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Removal of Microcystis aeruginosa through the Combined Effect of Plasma Discharge and Hydrodynamic Cavitation

Abstract

Cyanobacterial water blooms represent toxicological, ecological and technological problems around the globe. When present in raw water used for drinking water production, one of the best strategies is to remove the cyanobacterial biomass gently before treatment, avoiding cell destruction and cyanotoxins release. This paper presents a new method for the removal of cyanobacterial biomass during drinking water pre-treatment that combines hydrodynamic cavitation with cold plasma discharge. Cavitation produces press stress that causes Microcystis gas vesicles to collapse. The cyanobacteria then sink, allowing for removal by sedimentation. The cyanobacteria showed no signs of revitalisation, even after seven days under optimal conditions with nutrient enrichment, as photosynthetic activity is negatively affected by hydrogen peroxide produced by plasma burnt in the cavitation cloud. Using this method, cyanobacteria can be removed in a single treatment, with no increase in microcystin concentration. This novel technology appears to be highly promising for continual treatment of raw water inflow in drinking water treatment plants and will also be of interest to those wishing to treat surface waters without the use of algaecides

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Removal of Microcystis aeruginosa through the Combined Effect of Plasma Discharge and Hydrodynamic Cavitation

Author: Maršálek, Blahoslav; Maršálková, Eliška; Odehnalová, Klára; Pochylý, František; Rudolf, Pavel; Sťahel, Pavel; Ráheľ, Jozef; Čech, Jan; Fialová, Simona; Zezulka, Štěpán
Publisher: MDPI
Year: 2019
DOI: 10.3390/w12010008
Source: https://dspace.vut.cz/bitstreams/c541caff-b140-4384-b928-6aa8c28252ae/download
wa e
A icle
Remo al o Mic ocys is ae uginosa h ough he
Combined E ec o Plasma Discha ge and
Hyd odynamic Ca i a ion
Blahosla Ma šálek 1,*, Eliška Ma šálko á1, Klá a Odehnalo á1, F an išek Pochylý2,
Pa el Rudol 2, Pa el S ahel 3, Joze Rahel 3, Jan ˇ
Cech 3, Simona Fialo á2and
Š ˇepán Zezulka 1
1Ins i u e o Bo any, Czech Academy o Sciences, Lidická25/27, CZ-602 00 B no, Czech Republic;
[email p o ec ed] (E.M.); [email p o ec ed] (K.O.); [email p o ec ed] (Š.Z.)
2V. Kaplan Depa men , Facul y o Mechanical Enginee ing, B no Uni e si y o Technology, 601 90 B no,
Czech Republic; [email p o ec ed].cz (F.P.); [email p o ec ed].cz (P.R.); [email p o ec ed].cz (S.F.)
3Depa men o Physical Elec onics, Facul y o Science, Masa yk Uni e si y, Ko lᡠská2, CZ-611 37 B no,
Czech Republic; [email p o ec ed] (P.S.); [email p o ec ed] (J.R.); [email p o ec ed] (J. ˇ
C.)
*Co espondence: blahosla [email p o ec ed]; Tel.: +42-0603-8729-55
Recei ed: 19 No embe 2019; Accep ed: 13 Decembe 2019; Published: 18 Decembe 2019


Abs ac :
Cyanobac e ial wa e blooms ep esen oxicological, ecological and echnological p oblems
a ound he globe. When p esen in aw wa e used o d inking wa e p oduc ion, one o he bes
s a egies is o emo e he cyanobac e ial biomass gen ly be o e ea men , a oiding cell des uc ion
and cyano oxins elease. This pape p esen s a new me hod o he emo al o cyanobac e ial
biomass du ing d inking wa e p e- ea men ha combines hyd odynamic ca i a ion wi h cold
plasma discha ge. Ca i a ion p oduces p ess s ess ha causes Mic ocys is gas esicles o collapse.
The cyanobac e ia hen sink, allowing o emo al by sedimen a ion. The cyanobac e ia showed no
signs o e i alisa ion, e en a e se en days unde op imal condi ions wi h nu ien en ichmen ,
as pho osyn he ic ac i i y is nega i ely a ec ed by hyd ogen pe oxide p oduced by plasma bu n in
he ca i a ion cloud. Using his me hod, cyanobac e ia can be emo ed in a single ea men , wi h no
inc ease in mic ocys in concen a ion. This no el echnology appea s o be highly p omising o
con inual ea men o aw wa e in low in d inking wa e ea men plan s and will also be o in e es
o hose wishing o ea su ace wa e s wi hou he use o algaecides.
Keywo ds: cyanobac e ial bloom; wa e ea men ; d inking wa e ; su ace wa e ; cold plasma
1. In oduc ion
Inc easing eu ophica ion o su ace wa e s esul s in he de elopmen o cyanobac e ial blooms,
esul ing in a de e io a ion o wa e quali y and dis up ions in he use o wa e bodies o ec ea ional,
echnological and ishe ies pu poses o d inking wa e p oduc ion [
1
]. Fu he mo e, he e is clea
e idence indica ing ha cyanobac e ial blooms a e inc easing in equency, magni ude and du a ion
globally and ha hey a e becoming a majo echnological, oxicological and hygienic p oblem [1].
Va ious me hods a e a ailable o educing o emo ing cyanobac e ial blooms. A b oad spec um
o chemical compounds can be used as p e en i e o cu a i e measu es [
2
]; howe e , hese can
cause addi ional eco oxicological isks o aqua ic ecosys ems [
3
]. Fu he s a egies o p e en ing
he de elopmen o cyanobac e ial blooms a e nu ien limi a ion [
4
], semi-na u al me hods such as
he use o plan ex ac s [
5
,
6
] o ba ley s aw, and biological me hods such as he use o p obio ic
mic oo ganisms and bio ic in e ac ions [
7
]. O he many chemical and biological me hods a ailable,
physical me hods a e being inc easingly in es iga ed, as hey no only emo e cyanobac e ial biomass
Wa e 2020,12, 8; doi:10.3390/w12010008 www.mdpi.com/jou nal/wa e
Wa e 2020,12, 8 2 o 14
bu also cyano oxins, which is especially impo an o d inking wa e ea men . While elec ochemical
me hods, such as elec opo a ion, elec ocoagula ion o elec o lo a ion [
8
], ha e been he subjec o
pa icula in e es , plasma discha ge in combina ion wi h ad anced oxida ion echnologies o i ied by
ul asonic o hyd odynamic ca i a ion a e p obably he mos s udied me hods a his ime [9–11].
In a s udy Kim e al. [
12
] ha e alua ed he educ ion o algal biomass by applying non- he mal o
cold-plasma p ocesses, i was ound ha such me hods des oyed he cell walls o mic oalgae. Based
on hei esea ch, cold plasma seems o be a use ul op ion o e ec i ely ea ing pollu ion caused by
algal blooms in su ace wa e . Plasma and ca i a ion echnologies ha e been applied o pu i ying
wa e con amina ed by mic oo ganisms [
10
,
13
]; howe e , p ac ical applica ions ha e been se e ely
es ic ed by excessi e ea men imes and ene gy demand (e.g., 24 h o cold plasma ea men o
se e al hund ed ca i a ion cycles).
As such, he e is a clea need o echnologies ha can emo e cyanobac e ial biomass wi hou
eleasing cyano oxins, and ha can be applied in con inuous mode o d inking wa e p e- ea men .
In his s udy, we ocus on physical me hods ha combine hyd odynamic ca i a ion (HC) and plasma
discha ge (HC +plasma). In p inciple, he me hod elies on he o ma ion o apou ca i ies in a liquid,
wi h plasma being p oduced in he bubble cloud ha is o med downs eam o he eac o nozzle
h ough ca i a ion. Plasma is p oduced h ough he applica ion o high ol age o an elec ode pai
moun ed in he eac o [
14
]. We modi ied his me hod o gen le ea men o cyanobac e ial biomass
wi h he aim o educing cyanobac e ial cell pho osyn he ic ac i i y wi hou cell lysis o elease o
cyano oxins. By op imising he ime, ene ge ic and ea men aspec s o he me hod, we aim o de elop
a p ac ically applicable me hod o use in d inking wa e ea men plan s.
2. Ma e ials and Me hods
2.1. Hyd odynamic Ca i a ion De ice
We cons uc ed an expe imen al ci cui consis ing o a wa e ank, a cen i ugal pump (Calpeda,
Vicenza, I aly, a ed powe ou pu 0.1 kW) con olled by a equency con e o , a se o p essu e
ansduce s (p
1
and p
2
; bo h BD Senso , 0–6 ba ) and a lowme e (Flomag DN 15) (Figu e 1).
A con e ging–di e ging (CD) nozzle wi h an inle diame e o 10 mm and a minimum diame e o
4 mm a he h oa sec ion was manu ac u ed om plexiglass. We designed a nozzle ha p oduced
a ca i a ion egion illed wi h sa u a ed apou ollowing a p essu e d op om c oss-sec ional a ea
educ ion (i.e., es ablishmen o HC acco ding o he Be noulli p inciple). As apou p essu e is
sensi i e o wa e empe a u e and he amoun o dissol ed gas, a he mome e (Sensi , ype PT100)
and p obe measu ing dissol ed oxygen con en (Oxymax) we e inco po a ed in o he expe imen al
ci cui . Subsequen moni o ing con i med ha dissol ed oxygen emained a ca. 8.3 mg/L h oughou
he expe imen , ha s a ic p essu e a he nozzle h oa eached sa u a ed apou p essu e le els a
3500 Pa and ha liquid empe a u e emained ela i ely s able o he i s i e cycles o HC +plasma
ea men , a ying only sligh ly be ween 23 and 25
◦
C. All es s we e ca ied ou a a discha ge a e o
0.45 L/s.
Wa e 2019, 11, x FOR PEER REVIEW 2 o 17
cyanobac e ial biomass bu also cyano oxins, which is especially impo an o d inking wa e
ea men . While elec ochemical me hods, such as elec opo a ion, elec ocoagula ion o
elec o lo a ion [8], ha e been he subjec o pa icula in e es , plasma discha ge in combina ion wi h
ad anced oxida ion echnologies o i ied by ul asonic o hyd odynamic ca i a ion a e p obably he
mos s udied me hods a his ime [9–11].
In a s udy Kim e al. [12] ha e alua ed he educ ion o algal biomass by applying non- he mal
o cold-plasma p ocesses, i was ound ha such me hods des oyed he cell walls o mic oalgae.
Based on hei esea ch, cold plasma seems o be a use ul op ion o e ec i ely ea ing pollu ion
caused by algal blooms in su ace wa e . Plasma and ca i a ion echnologies ha e been applied o
pu i ying wa e con amina ed by mic oo ganisms [10,13]; howe e , p ac ical applica ions ha e been
se e ely es ic ed by excessi e ea men imes and ene gy demand (e.g., 24 h o cold plasma
ea men o se e al hund ed ca i a ion cycles).
As such, he e is a clea need o echnologies ha can emo e cyanobac e ial biomass wi hou
eleasing cyano oxins, and ha can be applied in con inuous mode o d inking wa e p e- ea men .
In his s udy, we ocus on physical me hods ha combine hyd odynamic ca i a ion (HC) and plasma
discha ge (HC + plasma). In p inciple, he me hod elies on he o ma ion o apou ca i ies in a
liquid, wi h plasma being p oduced in he bubble cloud ha is o med downs eam o he eac o
nozzle h ough ca i a ion. Plasma is p oduced h ough he applica ion o high ol age o an elec ode
pai moun ed in he eac o [14]. We modi ied his me hod o gen le ea men o cyanobac e ial
biomass wi h he aim o educing cyanobac e ial cell pho osyn he ic ac i i y wi hou cell lysis o
elease o cyano oxins. By op imising he ime, ene ge ic and ea men aspec s o he me hod, we
aim o de elop a p ac ically applicable me hod o use in d inking wa e ea men plan s.
2. Ma e ials and Me hods
2.1. Hyd odynamic Ca i a ion De ice
We cons uc ed an expe imen al ci cui consis ing o a wa e ank, a cen i ugal pump (Calpeda,
Vicenza, I aly, a ed powe ou pu 0.1 kW) con olled by a equency con e o , a se o p essu e
ansduce s (p
1
and p
2
; bo h BD Senso , 0–6 ba ) and a lowme e (Flomag DN 15) (Figu e 1). A
con e ging–di e ging (CD) nozzle wi h an inle diame e o 10 mm and a minimum diame e o 4
mm a he h oa sec ion was manu ac u ed om plexiglass. We designed a nozzle ha p oduced a
ca i a ion egion illed wi h sa u a ed apou ollowing a p essu e d op om c oss-sec ional a ea
educ ion (i.e., es ablishmen o HC acco ding o he Be noulli p inciple). As apou p essu e is
sensi i e o wa e empe a u e and he amoun o dissol ed gas, a he mome e (Sensi , ype PT100)
and p obe measu ing dissol ed oxygen con en (Oxymax) we e inco po a ed in o he expe imen al
ci cui . Subsequen moni o ing con i med ha dissol ed oxygen emained a ca. 8.3 mg/L h oughou
he expe imen , ha s a ic p essu e a he nozzle h oa eached sa u a ed apou p essu e le els a
3500 Pa and ha liquid empe a u e emained ela i ely s able o he i s i e cycles o HC + plasma
ea men , a ying only sligh ly be ween 23 and 25 °C. All es s we e ca ied ou a a discha ge a e
o 0.45 L/s.
Figu e 1. Schema ic illus a ion o he hyd odynamic ca i a ion (HC) de ice [15]. CD: con e ging–
di e ging.
Figu e 1.
Schema ic illus a ion o hehyd odynamicca i a ion (HC)de ice[
15
]. CD: con e ging–di e ging.
Wa e 2020,12, 8 3 o 14
2.2. Plasma Je Gene a ion in Liquid Gas Ca i ies
A plasma je was p oduced in he ca i a ion bubble cloud gene a ed in wa e using an expe imen al
se up consis ing o wo pa s: (a) a PMMA (poly me hyl me hac yla e, i.e., plexiglass) pipe ca i a ion
gene a o (nozzle) connec ed o a wa e pumping and eci cula ion uni (black ci cle in Figu e 2),
and (b) a plasma gene a o wi h a discha ge elec ode sys em and a high- ol age (HV) powe gene a o
(g een ci cle in Figu e 2). Spec al analysis o he discha ge was ob ained jus abo e he HV elec ode
using A aSpec ULS3648TEC-USB2 spec ome e s (A an es BV, The Ne he lands). Spec ome e s we e
con igu ed o h ee spec al egions co e ing he ange om nea -ul a iole (UV) o he nea -in a ed
(NIR) egion. In he con igu a ion o su ey spec a (UV-VIS-NIR), he spec ome e was equipped
wi h he g a ing UA (200–1100 nm), a sli o 25 um, Deep UV de ec o coa ing and o de -so ing coa ing
wi h 350 and 600 nm long-pass il e . Fo highe esolu ion measu emen s in UV egion, esp. NIR
egion, he spec ome e s we e equipped wi h he g a ing UE (290–395 nm), sli 10 um and DUV
coa ing, esp. g a ing NC (740–924 nm), sli 25 um and o de -so ing il e a 600 nm.
Wa e 2019, 11, x FOR PEER REVIEW 3 o 17
2.2. Plasma Je Gene a ion in Liquid Gas Ca i ies
A plasma je was p oduced in he ca i a ion bubble cloud gene a ed in wa e using an
expe imen al se up consis ing o wo pa s: (a) a PMMA (poly me hyl me hac yla e, i.e., plexiglass)
pipe ca i a ion gene a o (nozzle) connec ed o a wa e pumping and eci cula ion uni (black ci cle
in Figu e 2), and (b) a plasma gene a o wi h a discha ge elec ode sys em and a high- ol age (HV)
powe gene a o (g een ci cle in Figu e 2). Spec al analysis o he discha ge was ob ained jus abo e
he HV elec ode using A aSpec ULS3648TEC-USB2 spec ome e s (A an es BV, The Ne he lands).
Spec ome e s we e con igu ed o h ee spec al egions co e ing he ange om nea -ul a iole
(UV) o he nea -in a ed (NIR) egion. In he con igu a ion o su ey spec a (UV-VIS-NIR), he
spec ome e was equipped wi h he g a ing UA (200–1100 nm), a sli o 25 um, Deep UV de ec o
coa ing and o de -so ing coa ing wi h 350 and 600 nm long-pass il e . Fo highe esolu ion
measu emen s in UV egion, esp. NIR egion, he spec ome e s we e equipped wi h he g a ing UE
(290–395 nm), sli 10 um and DUV coa ing, esp. g a ing NC (740–924 nm), sli 25 um and o de -
so ing il e a 600 nm.
Figu e 2. Expe imen al se -up.
We gene a ed a plasma je in he ca i a ion egion using a pai o PVC-insula ed coppe wi e
elec odes placed inside he ca i a ion nozzle (Figu e 3). The i s HV elec ode was placed inside he
nozzle a he poin o minimum diame e , while he second, g ounded, elec ode was posi ioned
downs eam o he ca i a ion bubble cloud. The insula ion was s ipped om he ips o he wi es o
c ea e a di ec conduc ing con ac wi h he wa e /bubble en i onmen (see Figu e 3). The discha ge
was gene a ed using an HV gene a o wi h sinusoidal HV ou pu , wi h ope a ion equency se o 50
kHz and HV powe a 400 W. The plasma je was gene a ed be ween he ips o he HV elec ode and
he g ounded elec ode, whe e i o med a plasma a ea ca. 20 mm in leng h (Figu e 4). To al wa e
olume inside he sys em was 6 L, and con ac - ea men ime was 1.48 s.
Figu e 3. De ails o he elec ode sys em and i s placemen wi h espec o he ca i a ion cloud.
Figu e 2. Expe imen al se -up.
We gene a ed a plasma je in he ca i a ion egion using a pai o PVC-insula ed coppe wi e
elec odes placed inside he ca i a ion nozzle (Figu e 3). The i s HV elec ode was placed inside
he nozzle a he poin o minimum diame e , while he second, g ounded, elec ode was posi ioned
downs eam o he ca i a ion bubble cloud. The insula ion was s ipped om he ips o he wi es o
c ea e a di ec conduc ing con ac wi h he wa e /bubble en i onmen (see Figu e 3). The discha ge
was gene a ed using an HV gene a o wi h sinusoidal HV ou pu , wi h ope a ion equency se o
50 kHz and HV powe a 400 W. The plasma je was gene a ed be ween he ips o he HV elec ode
and he g ounded elec ode, whe e i o med a plasma a ea ca. 20 mm in leng h (Figu e 4). To al wa e
olume inside he sys em was 6 L, and con ac - ea men ime was 1.48 s.
Wa e 2019, 11, x FOR PEER REVIEW 3 o 17
2.2. Plasma Je Gene a ion in Liquid Gas Ca i ies
A plasma je was p oduced in he ca i a ion bubble cloud gene a ed in wa e using an
expe imen al se up consis ing o wo pa s: (a) a PMMA (poly me hyl me hac yla e, i.e., plexiglass)
pipe ca i a ion gene a o (nozzle) connec ed o a wa e pumping and eci cula ion uni (black ci cle
in Figu e 2), and (b) a plasma gene a o wi h a discha ge elec ode sys em and a high- ol age (HV)
powe gene a o (g een ci cle in Figu e 2). Spec al analysis o he discha ge was ob ained jus abo e
he HV elec ode using A aSpec ULS3648TEC-USB2 spec ome e s (A an es BV, The Ne he lands).
Spec ome e s we e con igu ed o h ee spec al egions co e ing he ange om nea -ul a iole
(UV) o he nea -in a ed (NIR) egion. In he con igu a ion o su ey spec a (UV-VIS-NIR), he
spec ome e was equipped wi h he g a ing UA (200–1100 nm), a sli o 25 um, Deep UV de ec o
coa ing and o de -so ing coa ing wi h 350 and 600 nm long-pass il e . Fo highe esolu ion
measu emen s in UV egion, esp. NIR egion, he spec ome e s we e equipped wi h he g a ing UE
(290–395 nm), sli 10 um and DUV coa ing, esp. g a ing NC (740–924 nm), sli 25 um and o de -
so ing il e a 600 nm.
Figu e 2. Expe imen al se -up.
We gene a ed a plasma je in he ca i a ion egion using a pai o PVC-insula ed coppe wi e
elec odes placed inside he ca i a ion nozzle (Figu e 3). The i s HV elec ode was placed inside he
nozzle a he poin o minimum diame e , while he second, g ounded, elec ode was posi ioned
downs eam o he ca i a ion bubble cloud. The insula ion was s ipped om he ips o he wi es o
c ea e a di ec conduc ing con ac wi h he wa e /bubble en i onmen (see Figu e 3). The discha ge
was gene a ed using an HV gene a o wi h sinusoidal HV ou pu , wi h ope a ion equency se o 50
kHz and HV powe a 400 W. The plasma je was gene a ed be ween he ips o he HV elec ode and
he g ounded elec ode, whe e i o med a plasma a ea ca. 20 mm in leng h (Figu e 4). To al wa e
olume inside he sys em was 6 L, and con ac - ea men ime was 1.48 s.
Figu e 3. De ails o he elec ode sys em and i s placemen wi h espec o he ca i a ion cloud.
Figu e 3. De ails o he elec ode sys em and i s placemen wi h espec o he ca i a ion cloud.
2.3. Cyanobac e ial S ain and Cul u e Condi ions
Fo ou expe imen s, we used Mic ocys is ae uginosa PCC 7806 s ain (Pas eu Cul u e Collec ion
o Cyanobac e ia; Pa is) cul u ed in BG11 medium o cyanobac e ia ( o medium composi ion,
see Supplemen a y Ma e ials Table S1). The cul u e has now been placed in ou labo a o y cul u e
collec ion and is g own unde s anda d condi ions o cyanobac e ia.
Wa e 2020,12, 8 4 o 14
Wa e 2019, 11, x FOR PEER REVIEW 4 o 17
Figu e 4. Image o he plasma je gene a ed in he liquid/ca i a ion bubble cloud en i onmen .
2.3. Cyanobac e ial S ain and Cul u e Condi ions
Fo ou expe imen s, we used Mic ocys is ae uginosa PCC 7806 s ain (Pas eu Cul u e Collec ion
o Cyanobac e ia; Pa is) cul u ed in BG11 medium o cyanobac e ia ( o medium composi ion, see
Supplemen a y Ma e ials Table S1). The cul u e has now been placed in ou labo a o y cul u e
collec ion and is g own unde s anda d condi ions o cyanobac e ia.
2.4. De e mina ion o Hyd ogen Pe oxide
We de e mined hyd ogen pe oxide p oduc ion using a colo ime ic me hod based on he
eac ion o pe oxide wi h i anyl ions ha p oduces a yellow-colou ed complex o pe i anic acid:
Ti4+ + H2O2 + H2O → TiO2.H2O2 + 4H+ [16]
2.5. G ow h Inhibi ion Tes
Immedia ely a e each expe imen , a cul u e o he Mic ocys is biomass was assessed using a
modi ied e sion o s anda d me hod ISO 8692 [17,18]. Samples om he expe imen al ea men (HC
o HC + Plasma) we e mixed and homogenised, ollowing which 1 o 2 mL o sample was mixed wi h
50% g ow h medium a a a io o 1:1 in o de o p o ide op imal g ow h condi ions. The samples
we e hen pipe ed in o a 96-well pla e and chlo ophyll luo escence was measu ed each 24 h using
a Tecan SPARK mul i unc ional mic opla e eade (Aus ia).
2.6. Chlo ophyll Quan i ica ion
Chlo ophyll concen a ion was assessed using a bbe Moldaenke Fluo oP obe (Ge many), which
bo h de e mines and quan i ies he algae classed unde g een algae, cyanobac e ia, dia oms and
c yp ophy es. Samples we e ob ained om 2 cm below he essel su ace.
2.7. Measu emen o Pho osyn he ic Ac i i y
Induced chlo ophyll luo escence (ChlFl) cha ac e is ics we e assessed using he AquaPen AP
100-C luo ome e (PSI, D áso , Czech Republic) equipped wi h cu e e holde and ambe - ed (620
nm) LEDs as measu ing, ac inic and sa u a ion ligh sou ces. A se o ChlFl pa ame e s was achie ed
a e 10 min o da k p e-adap a ion a oom empe a u e (22 ± 1 °C). Immedia ely be o e he
measu emen , samples in he cu e e we e ho oughly shaken o a oid sedimen a ion and/o su ace
loa ing o cyanobac e ial cells, hen a sa u a ion pulse (3000 µmol m−2 s−1, 500 ms) was applied and
he maximal quan um yield (FV/FM) was measu ed. A e ano he 30 s o elaxa ion in he da k, as
Commen ed [M1]: 补补补补补补
Figu e 4. Image o he plasma je gene a ed in he liquid/ca i a ion bubble cloud en i onmen .
2.4. De e mina ion o Hyd ogen Pe oxide
We de e mined hyd ogen pe oxide p oduc ion using a colo ime ic me hod based on he eac ion
o pe oxide wi h i anyl ions ha p oduces a yellow-colou ed complex o pe i anic acid [16]:
Ti4++H2O2+H2O→TiO2.H2O2+4H+
2.5. G ow h Inhibi ion Tes
Immedia ely a e each expe imen , a cul u e o he Mic ocys is biomass was assessed using a
modi ied e sion o s anda d me hod ISO 8692 [
17
,
18
]. Samples om he expe imen al ea men (HC
o HC +Plasma) we e mixed and homogenised, ollowing which 1 o 2 mL o sample was mixed wi h
50% g ow h medium a a a io o 1:1 in o de o p o ide op imal g ow h condi ions. The samples we e
hen pipe ed in o a 96-well pla e and chlo ophyll luo escence was measu ed each 24 h using a Tecan
SPARK mul i unc ional mic opla e eade (Aus ia).
2.6. Chlo ophyll Quan i ica ion
Chlo ophyll concen a ion was assessed using a bbe Moldaenke Fluo oP obe (Ge many), which
bo h de e mines and quan i ies he algae classed unde g een algae, cyanobac e ia, dia oms and
c yp ophy es. Samples we e ob ained om 2 cm below he essel su ace.
2.7. Measu emen o Pho osyn he ic Ac i i y
Induced chlo ophyll luo escence (ChlFl) cha ac e is ics we e assessed using he AquaPen AP
100-C luo ome e (PSI, D
á
so , Czech Republic) equipped wi h cu e e holde and ambe - ed (620 nm)
LEDs as measu ing, ac inic and sa u a ion ligh sou ces. A se o ChlFl pa ame e s was achie ed a e
10 min o da k p e-adap a ion a oom empe a u e (22
±
1
◦
C). Immedia ely be o e he measu emen ,
samples in he cu e e we e ho oughly shaken o a oid sedimen a ion and/o su ace loa ing o
cyanobac e ial cells, hen a sa u a ion pulse (3000
µ
mol m
−2
s
−1
, 500 ms) was applied and he maximal
quan um yield (F
V
/F
M
) was measu ed. A e ano he 30 s o elaxa ion in he da k, as luo escence
ansien (OJIP cu e) unde ac inic ligh (300
µ
mol m
−2
s
−1
, 2 s) was eco ded. Th ee independen
samples om each ea men we e analysed and ChlFl pa ame e s including basal and maximal
luo escence le el (F
0
, F
M
o F
P
) o ‘Fix A ea’ alue we e eco ded. In o de o compa e he i ness
o cyanobac e ial cells ela i ely and independen ly om he F
V
/F
M
alue, a “Fi ness ac o ” was
in oduced as a a io o he Fix A ea alue (de ined ma hema ically as he a ea below he OJIP cu e
limi ed by F
0
ime o es ima ion (40
µ
s) and ime 1 s, a e he ex ac ion o backg ound signal le el) o
F0acco ding o he ollowing equa ion:
Fi ness ac o =(Fix A ea/F0)−1000 (uni less)
Wa e 2020,12, 8 5 o 14
This alue in eg a es bo h he o e all luo escence signal based on cell suspension p ope ies
(densi y, chlo ophyll con en ) and changes in he shape o he OJIP cu e.
2.8. Mic ocys in Analysis
Quan iPla e Ki o Mic ocys ins (En i oLogix USA) was used o ex acellula mic ocys ins
de e mina ion. A e expe imen al ea men s, samples we e il e ed by 0.2
µ
m Sa o ius il e s. Resul s
a e in e p e ed as he sum o mic ocys ins.
2.9. S a is ical Analysis
To ind ou i he da ase s o he expe imen al esul s we e s a is ically signi ican , analysis o
a iance (ANOVA) was used.
A e e i ica ion o no mal dis ibu ion and homogenei y o a iance, he da a we e p ocessed by
analysis o a iance (ANOVA), wi h di e ences compa ed he Tukey Hones ly signi ican di e ence
(HSD) ange es and signi icance se a p<0.05.
3. Resul s and Discussion
3.1. Plasma Gene a ion
While ac i i y o eac i e oxygen species (ROS) has been p oposed as he d i e o cyanobac e ial
cell damage in p e ious s udies epo ing on he use o plasma in wa e ea men , he e is no empi ical
da a o suppo his. In his s udy, we speci ically se ou o measu e he p esence o adicals gene a ed.
In doing so, we no only con i med he p esence o oxygen adicals [OH] bu also an app eciable le el
o ni ogen adicals (see Figu e 5). Spec al analysis o he discha ge ( aken jus abo e he HV elec ode;
spec al lines and bands iden i ied using [
19
–
21
]; see Figu e 5, o de ails see Supplemen a y Ma e ials)
unde bo h nea UV (Figu e 6) and NIR (Figu e 7) clea ly showed ha he combina ion o HC +plasma
p oduced bo h oxygen adicals (single and/o iple spec a) and hyd oxyl o ni oxyl adicals. While
he wa e was only exposed o plasma o ca. 7 ms pe cycle, he eac i e oxygen/ni ogen species
(RONS) gene a ed (e.g., pe oxides) ha e a longe li e ime. The spec a also included a omic coppe
lines a ising om he me al elec odes hemsel es, wi h he s onges lines iden i ied a 324.8 and
327.4 nm in he UV egion; 510.6, 515.3 and 521.8 nm in he isible egion and 793.3 and 809.3 nm in
he NIR egion (see Figu es 6and 7).
Wa e 2019, 11, x FOR PEER REVIEW 6 o 17
Figu e 5. Su ey spec um o plasma in he liquid/ca i a ion bubble cloud en i onmen .
The s onges emission in he UV spec al egion came om OH adicals (Figu e 6), wi h he
s onges emission o he OH 2Σ→2Π g ound s a e sys em occu ing a 306 nm (bands 0-0 and 1-1)
and a weake emission a 281 nm (band 1-0). Unde isible and NIR, he spec um also showed s ong
a omic hyd ogen lines (Balme se ies; Hα a 656 nm, Hβ a 486 nm and Hγ a 434 nm) and a omic
oxygen lines (3s-3p iple s a 777.4 nm, 5S*-5P and 844.6 nm, 3S*-3P). The p esence o a wa e laye
be ween he discha ge and he PMMA ube con ibu ed o abso p ion o he discha ge emission [22].
Fo example, ni ogen adical molecules p esen in he discha ge a mosphe e we e dilu ed, as shown
by a compa ison be ween he emission o he second posi i e N2 sys em (SPS; C 3Π→B 3Π) wi h he
i s nega i e N2+ ion sys em (FNS; 2Σ→2Σ, g ound s a e). The SPS comp ised nume ous ib a ion
bands (e.g., band 0-0 a 337.1 nm), while he FNS spec um only showed a weak band a 391.4 nm
(band 0-0). Based on he second posi i e ni ogen sys em spec um, he o a ional empe a u e o he
N2 molecules was es ima ed a 3600 ± 300 K.
The emission spec a, showing a omic oxygen, a omic hyd ogen and exci ed ni ogen
molecules/ions in he discha ge, clea ly indica e ha wa e apou molecules we e dissocia ed o OH
adicals. The p esence o exci ed ni ogen molecules and a omic oxygen also sugges s he p esence o
ni ogen oxide species [23], commonly obse ed in discha ge spec a o discha ges used o p oduce
RONS in wa e [24,25]. While o he spec oscopic me hods (e.g., Fou ie ans o m in a ed
abso p ion, lase abso p ion, elec on pa amagne ic esonance), along wi h luo escence/colo ime ic
measu emen s [22,26,27], may be be e placed o con i m and quan i y RONS, ou own spec oscopic
e alua ion clea ly showed p oduc ion o RONS by HC + plasma.
The spec um also consis s o a omic coppe lines (see Figu es 6 and 7) a ising om he ma e ial
o me al elec odes. The s onges iden i ied lines we e a 324.8 and 327.4 nm in he UV egion, 510.6,
515.3 and 521.8 nm in he isible egion and 793.3 and 809.3 nm in he NIR egion.
Fo he iden i ica ion o he spec al lines and bands he ollowing li e a u e was used: [19–21]
Figu e 5. Su ey spec um o plasma in he liquid/ca i a ion bubble cloud en i onmen .
The s onges emission in he UV spec al egion came om OH adicals (Figu e 6), wi h he
s onges emission o he OH
2Σ→2Π
g ound s a e sys em occu ing a 306 nm (bands 0-0 and 1-1)
and a weake emission a 281 nm (band 1-0). Unde isible and NIR, he spec um also showed s ong
a omic hyd ogen lines (Balme se ies; H
α
a 656 nm, H
β
a 486 nm and H
γ
a 434 nm) and a omic

Wa e 2020,12, 8 6 o 14
oxygen lines (3s-3p iple s a 777.4 nm, 5S
*
-5P and 844.6 nm, 3S
*
-3P). The p esence o a wa e laye
be ween he discha ge and he PMMA ube con ibu ed o abso p ion o he discha ge emission [
22
].
Fo example, ni ogen adical molecules p esen in he discha ge a mosphe e we e dilu ed, as shown
by a compa ison be ween he emission o he second posi i e N
2
sys em (SPS; C
3Π→
B
3Π
) wi h he
i s nega i e N
2+
ion sys em (FNS;
2Σ→2Σ
, g ound s a e). The SPS comp ised nume ous ib a ion
bands (e.g., band 0-0 a 337.1 nm), while he FNS spec um only showed a weak band a 391.4 nm
(band 0-0). Based on he second posi i e ni ogen sys em spec um, he o a ional empe a u e o he
N2molecules was es ima ed a 3600 ±300 K.
Wa e 2019, 11, x FOR PEER REVIEW 7 o 17
Figu e 6. Nea UV/VIS spec um o plasma in he liquid/ca i a ion bubble cloud en i onmen .
Figu e 7. VIS/NIR spec um o plasma in he liquid/ca i a ion bubble cloud en i onmen .
3.2. Mic ocys is G ow h Inhibi ion unde Op imal Condi ions wi h Nu ien En ichmen
We unde ook an ini ial 8-day expe imen al ial, wi h samples aken a e one, h ee and i e
ea men cycles, in o de o assess he numbe o cycles needed o (a) p omo e Mic ocys is damage,
and (b) assess whe he cyanobac e ia a e able o eco e g ow h and me abolic ac i i y ollowing HC
+ plasma ea men unde op imal condi ions. This i s es con i med h ee cycles as being su icien
o inhibi cyanobac e ial g ow h unde bo h HC and HC + plasma ea men s, wi h he esul s o HC
+ plasma e en mo e p onounced han o HC alone (Figu es 8 and 9). While g ow h o HC- ea ed
Mic ocys is began o eco e one week a e a single cycle o ea men (Figu e 8), i emained s ongly
inhibi ed ollowing ea men by HC + plasma, wi h li le me abolic ac i i y e iden a e eigh days
unde op imal cul i a ion condi ions (Figu e 9).
Figu e 6. Nea UV/VIS spec um o plasma in he liquid/ca i a ion bubble cloud en i onmen .
Wa e 2019, 11, x FOR PEER REVIEW 7 o 17
Figu e 6. Nea UV/VIS spec um o plasma in he liquid/ca i a ion bubble cloud en i onmen .
Figu e 7. VIS/NIR spec um o plasma in he liquid/ca i a ion bubble cloud en i onmen .
3.2. Mic ocys is G ow h Inhibi ion unde Op imal Condi ions wi h Nu ien En ichmen
We unde ook an ini ial 8-day expe imen al ial, wi h samples aken a e one, h ee and i e
ea men cycles, in o de o assess he numbe o cycles needed o (a) p omo e Mic ocys is damage,
and (b) assess whe he cyanobac e ia a e able o eco e g ow h and me abolic ac i i y ollowing HC
+ plasma ea men unde op imal condi ions. This i s es con i med h ee cycles as being su icien
o inhibi cyanobac e ial g ow h unde bo h HC and HC + plasma ea men s, wi h he esul s o HC
+ plasma e en mo e p onounced han o HC alone (Figu es 8 and 9). While g ow h o HC- ea ed
Mic ocys is began o eco e one week a e a single cycle o ea men (Figu e 8), i emained s ongly
inhibi ed ollowing ea men by HC + plasma, wi h li le me abolic ac i i y e iden a e eigh days
unde op imal cul i a ion condi ions (Figu e 9).
Figu e 7. VIS/NIR spec um o plasma in he liquid/ca i a ion bubble cloud en i onmen .
The emission spec a, showing a omic oxygen, a omic hyd ogen and exci ed ni ogen
molecules/ions in he discha ge, clea ly indica e ha wa e apou molecules we e dissocia ed
o OH adicals. The p esence o exci ed ni ogen molecules and a omic oxygen also sugges s he
p esence o ni ogen oxide species [
23
], commonly obse ed in discha ge spec a o discha ges used o
p oduce RONS in wa e [
24
,
25
]. While o he spec oscopic me hods (e.g., Fou ie ans o m in a ed
abso p ion, lase abso p ion, elec on pa amagne ic esonance), along wi h luo escence/colo ime ic
measu emen s [
22
,
26
,
27
], may be be e placed o con i m and quan i y RONS, ou own spec oscopic
e alua ion clea ly showed p oduc ion o RONS by HC +plasma.
The spec um also consis s o a omic coppe lines (see Figu es 6and 7) a ising om he ma e ial
o me al elec odes. The s onges iden i ied lines we e a 324.8 and 327.4 nm in he UV egion, 510.6,
515.3 and 521.8 nm in he isible egion and 793.3 and 809.3 nm in he NIR egion.
Fo he iden i ica ion o he spec al lines and bands he ollowing li e a u e was used: [19–21]
Wa e 2020,12, 8 7 o 14
3.2. Mic ocys is G ow h Inhibi ion unde Op imal Condi ions wi h Nu ien En ichmen
We unde ook an ini ial 8-day expe imen al ial, wi h samples aken a e one, h ee and i e
ea men cycles, in o de o assess he numbe o cycles needed o (a) p omo e Mic ocys is damage,
and (b) assess whe he cyanobac e ia a e able o eco e g ow h and me abolic ac i i y ollowing HC +
plasma ea men unde op imal condi ions. This i s es con i med h ee cycles as being su icien o
inhibi cyanobac e ial g ow h unde bo h HC and HC +plasma ea men s, wi h he esul s o HC
+plasma e en mo e p onounced han o HC alone (Figu es 8and 9). While g ow h o HC- ea ed
Mic ocys is began o eco e one week a e a single cycle o ea men (Figu e 8), i emained s ongly
inhibi ed ollowing ea men by HC +plasma, wi h li le me abolic ac i i y e iden a e eigh days
unde op imal cul i a ion condi ions (Figu e 9).
Wa e 2019, 11, x FOR PEER REVIEW 8 o 17
Figu e 8. G ow h o a Mic ocys is cul u e ollowing HC ea men . RFU –Rela i e luo escence uni s.
Figu e 9. G ow h o a Mic ocys is cul u e ollowing HC + plasma ea men .
3.3. Mechanisms o Mic ocys is Biomass Remo al
Based on he esul s o he i s expe imen al ial, we decided on h ee cycles as he op imal
ea men egime. In he second expe imen al ial, he e o e, cyanobac e ial ea men samples we e
aken a e one, wo and h ee cycles.
We included he measu emen o chlo ophyll-a o ou expe imen al design in o de o con i m
quan i a i e emo al o cyanobac e ial biomass om he wa e column. The esul s ended o mi o
hose om he g ow h inhibi ion es , wi h a mo e apid dec ease in chlo ophyll concen a ion
ollowing wo o mo e cycles o HC + plasma ea men compa ed wi h HC ea men alone (Figu es
10 and 11).
Cyanobac e ial biomass only showed a slow decline ollowing ea men by HC alone, wi h a
no iceable e ec only de ec able a e 3–6 days (Figu e 10). In compa ison, ea men by HC + plasma
Figu e 8. G ow h o a Mic ocys is cul u e ollowing HC ea men . RFU –Rela i e luo escence uni s.
Wa e 2019, 11, x FOR PEER REVIEW 8 o 17
Figu e 8. G ow h o a Mic ocys is cul u e ollowing HC ea men . RFU –Rela i e luo escence uni s.
Figu e 9. G ow h o a Mic ocys is cul u e ollowing HC + plasma ea men .
3.3. Mechanisms o Mic ocys is Biomass Remo al
Based on he esul s o he i s expe imen al ial, we decided on h ee cycles as he op imal
ea men egime. In he second expe imen al ial, he e o e, cyanobac e ial ea men samples we e
aken a e one, wo and h ee cycles.
We included he measu emen o chlo ophyll-a o ou expe imen al design in o de o con i m
quan i a i e emo al o cyanobac e ial biomass om he wa e column. The esul s ended o mi o
hose om he g ow h inhibi ion es , wi h a mo e apid dec ease in chlo ophyll concen a ion
ollowing wo o mo e cycles o HC + plasma ea men compa ed wi h HC ea men alone (Figu es
10 and 11).
Cyanobac e ial biomass only showed a slow decline ollowing ea men by HC alone, wi h a
no iceable e ec only de ec able a e 3–6 days (Figu e 10). In compa ison, ea men by HC + plasma
Figu e 9. G ow h o a Mic ocys is cul u e ollowing HC +plasma ea men .
3.3. Mechanisms o Mic ocys is Biomass Remo al
Based on he esul s o he i s expe imen al ial, we decided on h ee cycles as he op imal
ea men egime. In he second expe imen al ial, he e o e, cyanobac e ial ea men samples we e
aken a e one, wo and h ee cycles.
We included he measu emen o chlo ophyll-a o ou expe imen al design in o de o con i m
quan i a i e emo al o cyanobac e ial biomass om he wa e column. The esul s ended o mi o
hose om he g ow h inhibi ion es , wi h a mo e apid dec ease in chlo ophyll concen a ion ollowing
wo o mo e cycles o HC +plasma ea men compa ed wi h HC ea men alone (Figu es 10 and 11).
Wa e 2020,12, 8 8 o 14
Wa e 2019, 11, x FOR PEER REVIEW 9 o 17
esul ed in a 95% d op in cyanobac e ial biomass wi hin a single day (Figu e 11). Mic oscopic
examina ion con i med ha HC ea men a ec ed cell s uc u e, he cellula su ace and, especially,
he gas esicles and subcellula s uc u e ha allow Mic ocys is o loa . This was con i med by
mic oscopic obse a ion, which showed abundan gas esicles (black do s inside cells) in con ol cells
(Figu e 12A) bu a la ge numbe o emp y cells a e jus one ca i a ion cycle (Figu e 12B).
Hyd odynamic ca i a ion can be used in wa e ea men echnologies o di e en pu poses ( o
e iew, see [28]) and can be combined wi h o he echnologies like ad anced oxygena ion
echnologies, e c. He e, we combined HC wi h plasma and, in compa ison o HC use only, all gas
esicles had collapsed in e e y cell ollowing he combina ion HC + plasma ea men (Figu e 12C).
Howe e , di e en mechanisms we e employed when we combined HC wi h plasma. As a esul ,
Mic ocys is biomass was almos comple ely emo ed om he wa e column a e one day o
ea men , and we hypo hesize ha he cells had insu icien ene gy o main ain me abolic ac i i y.
This hypo hesis can be p o en by measu emen o pho osyn he ic ac i i y.
Figu e 10. Remo al o cyanobac e ial biomass ollowing HC ea men .
Figu e 10. Remo al o cyanobac e ial biomass ollowing HC ea men .
Wa e 2019, 11, x FOR PEER REVIEW 10 o 17
Figu e 11. Remo al o cyanobac e ial biomass ollowing HC + plasma ea men .
(A)
Figu e 11. Remo al o cyanobac e ial biomass ollowing HC +plasma ea men .
Cyanobac e ial biomass only showed a slow decline ollowing ea men by HC alone, wi h a
no iceable e ec only de ec able a e 3–6 days (Figu e 10). In compa ison, ea men by HC +plasma
esul ed in a 95% d op in cyanobac e ial biomass wi hin a single day (Figu e 11). Mic oscopic
examina ion con i med ha HC ea men a ec ed cell s uc u e, he cellula su ace and, especially,
he gas esicles and subcellula s uc u e ha allow Mic ocys is o loa . This was con i med by
mic oscopic obse a ion, which showed abundan gas esicles (black do s inside cells) in con ol cells
(Figu e 12A) bu ala genumbe o emp ycellsa e jus one ca i a ion cycle(Figu e12B). Hyd odynamic
ca i a ion can be used in wa e ea men echnologies o di e en pu poses ( o e iew, see [
28
])
and can be combined wi h o he echnologies like ad anced oxygena ion echnologies, e c. He e, we
combined HC wi h plasma and, in compa ison o HC use only, all gas esicles had collapsed in e e y
cell ollowing he combina ion HC +plasma ea men (Figu e 12C). Howe e , di e en mechanisms
we e employed when we combined HC wi h plasma. As a esul , Mic ocys is biomass was almos
comple ely emo ed om he wa e column a e one day o ea men , and we hypo hesize ha
he cells had insu icien ene gy o main ain me abolic ac i i y. This hypo hesis can be p o en by
measu emen o pho osyn he ic ac i i y.
Wa e 2020,12, 8 9 o 14
Wa e 2019, 11, x FOR PEER REVIEW 10 o 17
Figu e 11. Remo al o cyanobac e ial biomass ollowing HC + plasma ea men .
(A)
Wa e 2019, 11, x FOR PEER REVIEW 11 o 17
(B)
(C)
Figu e 12. (A) Abundan gas esicles (black do s inside cells) in con ol Mic ocys is cells; (B) Mic ocys is
cells a e he i s HC ca i a ion cycle. Red a ows show he cells wi h collapsed gas esicles; (C)
Mic ocys is cells a e HC + plasma ea men , indica ing in ac cells wi h collapsed gas esicles.
Cyanobac e ial pho osyn he ic ac i i y, measu ed using dynamic o chlo ophyll luo escence
(ChlFl) cha ac e is ics, exhibi ed signi ican changes al eady a e 24 h a e HC ea men , wi h he
e ec s pa icula ly no iceable ollowing ea men wi h HC + plasma (Figu e 13). Compa ed o he
un ea ed con ol, basal ChlFl (F0) alues inc eased in samples exposed o h ee cycles o HC and HC
+ plasma (Figu e 13A). A conside able d op in F0 alues was obse ed 48 and 72 h a e HC + plasma
Figu e 12.
(
A
) Abundan gas esicles (black do s inside cells) in con ol Mic ocys is cells; (
B
)Mic ocys is
cells a e he i s HC ca i a ion cycle. Red a ows show he cells wi h collapsed gas esicles;
(C)Mic ocys is cells a e HC +plasma ea men , indica ing in ac cells wi h collapsed gas esicles.