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Їoˮˮ2025ˮ̎S(bio)죨ˮ̎|(zh)Ч߼ӑ(ھŌ)Ո冢
 
(dng)ǰλ: » ИI(y)YӍ » ˮI(y) »

ݣʿоTʿ(do)ʡμℓ(chung)˲šF(xin)пԺB(ti)ch(hun)c(din)(sh)(yn)ҸпԺꄓ(chung)´M(jn)ƌW(xu)֕LHˮf(xi)ЇίTίTIWA-China YWP)

Ŵw  sСw l(f)ڣ2022-07-21  ԴʿоTʿ(do)ʡμℓ(chung)˲šF(xin)п  g[Δ(sh)122
ʾʿоTʿ(do)ʡμℓ(chung)˲šF(xin)пԺB(ti)ch(hun)c(din)(sh)(yn)ҸпԺꄓ(chung)´M(jn)ƌW(xu)֕LHˮf(xi)ЇίTίTIWA-China YWP)HؿƌW(xu)ҌW(xu)SWSTЇB(ti)W(xu)W(xu)깤ίTίTЇh(hun)ƌW(xu)W(xu)h(hun)،W(xu)֕ίT
Їoˮˮ2025ˮ̎S(bio)죨ˮ̎|(zh)Ч߼ӑ(ھŌ)Ո冢

Їoˮˮ2025ˮ̎S(bio)죨ˮ̎|(zh)Ч߼ӑ(ھŌ)Ո冢
 

 

 

 

 

 оT ʿ(do) |cr(nng)I(y)B(ti)о

 


]zhuhui@iga.ac.cn
ͨŵַLи±^(q)ʢ4888̖
]a130102




 

 

2008-09--2011-07    ЇƌW(xu)Ժ|cr(nng)I(y)B(ti)о   ʿW(xu)λ

2006-09--2008-07    |W(xu)   TʿW(xu)λ

2002-09--2006-07    ֻW(xu)Ժ   W(xu)ʿW(xu)λ

 

 

 

(jng)v

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

2022.01--       пԺ|cr(nng)I(y)B(ti)о W(xu)g(sh)ίTίT

2021.11--       пԺB(ti)ch(hun)c(din)(sh)(yn) (w)

2021.02--       пԺ|cr(nng)I(y)B(ti)о o(j)ίίT

2021.11--       пԺ|cr(nng)I(y)B(ti)о W(xu)λίT

2019.09--2021.10    пԺB(ti)ch(hun)c(din)(sh)(yn)

2019.04--       пԺ|cr(nng)I(y)B(ti)о h(hun)h֧ӛ

2019.01--       пԺ|cr(nng)I(y)B(ti)о оT

2013.12--2018.12    пԺ|cr(nng)I(y)B(ti)о оT

2014.11--2015.12    ݴW(xu)УUC Berkeley LW(xu)

2011.07--2013.12    пԺ|cr(nng)I(y)B(ti)о оT

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

оB

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

ףʿоTʿ(do)пԺٕT(yu)Tʡμℓ(chung)˲F(xin)пԺB(ti)ch(hun)c(din)(sh)(yn)ҳ(w)ʡ^(q)˹ؘ(gu)cl(xing)彨O(sh)оĸΡ(dn)B(ti)h(hun)r(nng)I(y)ԴȾcO(jin)ָ(do)(dn)пԺٕ•LпԺٕƌW(xu)֕YIPA-ESL،W(xu)Փ•L“һһ·”،W(xu)W(wng)j(lu)“(lin)˸LHˮf(xi)ЇίTίTIWA-China YWP)HؿƌW(xu)ҌW(xu)J(rn)CšI(y)ؿƌW(xu)ңSWS - Professional Wetland Scientistꑵ؅^(q)λ@J(rn)CߣЇB(ti)W(xu)W(xu)깤ίTЇh(hun)ƌW(xu)W(xu)h(hun)،W(xu)֕ίTʡW(xu)ʡƅf(xi)ίTLŮƼ߅f(xi)(w)¼渱ؕLҪԴȾγ^cC(j)ȾˮwB(ti)g(sh)cՓ|(zh)h(hun)Ⱦf(xi)ͬ{(dio)ؙC(j)r(nng)͝B(ti)ϵy(tng)̼RpŵȷоևȻƌW(xu)ϻ973Ӌn}c(din)аl(f)(xing)n}пԺȌ(do)(xing)An}ȿ(xing)Ŀ20(xing)@ʡȻƌW(xu)Ȫ2(xing)քe1͵4ʡȻƌW(xu)W(xu)g(sh)ɹȪ2(xing)քe1͵3@пԺA(yu)㲩ʿԵһ/ͨӍ߰l(f)SCIՓ50ƪпԺһ^(q)14ƪ^(q)8ƪESI߱Փ1ƪԵһ/ͨӍڡЇƌW(xu)ԺԺЇƌW(xu)𡷵ĺڿl(f)Փ19ƪՓı1900ԵһՈ˫@ڙ(qun)l(f)3(xing)2(xing)(dn)·HؿƌW(xu)ҌW(xu)SCIڿWetlandsCell PressڿThe Innovation݋CSCDڿؿƌW(xu)͡(yng)B(ti)W(xu)󡷾ίWatershed Ecology and the Environment͡Journal of Water and Climate Change݋SCIڿChinese Geographical Scienceþί

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

Ϣ

   
I(y)

 

 

 

 

 

 

 

 

 

 

 

083001-h(hun)ƌW(xu)

083002-h(hun)

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

ԴȾγ^cC(j)

ˮwB(ti)g(sh)cՓ

|(zh)h(hun)Ⱦf(xi)ͬ{(dio)

r(nng)͝B(ti)ϵy(tng)̼Rp

 

 

 

 

 

 

ָ(do)W(xu)r

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

ѮI(y)о

yTʿо2014-2017пԺ|(yu)TʿՓī@

̑Tʿо2015-2018пԺ|(yu)TʿՓī@

                                                                 пԺ|2017оҪW(xu)@

                                                                 пԺ|2017ȃ(yu)о

Tʿо2017-2020   пԺ|(yu)TʿՓī@

                                                                 пԺ|2020ȃ(yu)㮅I(y)

                                                                 пԺ|2019оҪW(xu)@

                                                                 ڶԴȾcˮh(hun)o(h)Hӑо^Ȫ

                                                                 пԺ|2019ȃ(yu)о

JTʿо2018-2021  пԺ|(yu)TʿՓī@

                                                                ڶԴȾcˮh(hun)o(h)HӑѺ

                                                                пԺ|2020оҪW(xu)@

                                                                пԺ|2020ȃ(yu)о

                                                                пԺ|2021ꃞ(yu)㮅I(y)

OTʿо2019-2022


Ҽʿо2021-2024

    󣬲ʿо2022-2025

 

˹Tʿо2020-2023

T|Tʿо2021-2024

͢Tʿо2021-2024


“(lin)B(yng)о

Դ“(lin)B(yng)Tʿо2012-2014

“(lin)B(yng)Tʿо2013-2015 

Ҽ“(lin)B(yng)Tʿо2017-2020|W(xu)(yu)TʿW(xu)λՓī@2019оҪW(xu)@

“(lin)B(yng)Tʿо2020-2023

“(lin)B(yng)Tʿо2020-2023

ţ“(lin)ϴTʿо2019-2022

“(lin)B(yng)Tʿо2021-2024

“(lin)B(yng)Tʿо2021-2024


ͩпԺW(xu)(chung)Œ(sh)`Ӗ(xn)Ӌ2016ģ

̐ڌ(sh)(x)2016ģ

uĄPI(y)O(sh)Ӌ2019ģ

־ΣI(y)O(sh)Ӌ2019ģ

Rܫڌ(sh)(x)2020ģ

Ԭ䓣ڌ(sh)(x)2020ģ

Ԭiڌ(sh)(x)2020ģ



 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

ֿ(xing)Ŀ

   
(xing)Ŀ

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

  • пԺȌ(do)A(xing)Ŀn}ˮˮB(ti)g(sh)ʾˣ

  • пԺ“˹ˮ-f(xi)ͬ{(dio)”(chung)½F(tun)(du)(xing)Ŀˣ

  • ȻƌW(xu)ί^(q)“(lin)ϻ𣺼}AشҎ(gu)ģˮ_l(f)ԴȾL(fng)UؙC(j)ƣn}ؓ(f)؟(z)ˣ

  • пԺꄓ(chung)´M(jn)(yu)T(xing)Ŀ ˣ

 

 


 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

ѽY(ji)}(xing)Ŀ

 

 

 

 

 

 

 

 

 

 

  • Ƽc(din)аl(f)(xing)Ŀ}: Ϣˮh(hun)֏(f)cˮ|(zh)g(sh) ˣ

  • пԺ|һҎ(gu)(xing)Ŀn}˹ȾC(j)Ƽ(qing)g(sh) ˣ

  • ʡh(hun)d(xing)Ŀ:||ԴȾcˮ|(zh)P(gun)Ig(sh)аl(f)ˣ

  • ȻƌW(xu)(xing)Ŀ:FiˮȌˮﵪwD(zhun)Ӱ푣ˣ

  • h(hun)ˮ|(zh)úh(hun)o(h)(xing)Ŀ֮n}:dPr(nng)塢r(nng)PB(yng)ֳԴȾؓ(f){(dio)飨ˣ

  • c(din)A(ch)оl(f)չӋ973Ӌn}:󽭴޴Ҏ(gu)ģӕrM(jn)^̣ˣ

  • ҭh(hun)o(h)B(ti)cֲ֏(f)c(din)(sh)(yn)_Ż(xing)Ŀ:˹̎^(q)ˮď(qing)g(sh)оˣ

  • пԺ^(q)r(nng)I(y)B(ti)c(din)(sh)(yn)_Ż(xing)Ŀ:^(q)D(zhun)ˮl푑(yng)ÙC(j)ˣ

  • ȻƌW(xu)(xing)Ŀ:ԴFݔ댦ˮﵪԴȾݔӰ푵ͬλʾۙоˣ

  • пԺ֪R(chung)¹Ҫ(xing)Ŀ֮n}:ԴȾݔؓ(f)ɼ䌦罭Ӱоˣ




 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

@

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

  • 2022ꎧI(lng)h(hun)h֧s@пԺď(qing)(bio)h֧su(y)w

  • 2021ꎧI(lng)пԺٕ،W(xu)֕s@Ժ(yu)֕su(y)w

  • 2021@пԺ|cr(nng)I(y)B(ti)оM(jn)߷Q̖

  • 2021@пԺ|cr(nng)I(y)B(ti)оM(jn)h(w)߷Q̖

  • 2021ꎧI(lng)h(hun)h֧s@ʡʡֱC(j)P(gun)M(jn)hMQ̖w

  • 2020@пԺ|cr(nng)I(y)B(ti)оM(jn)߷Q̖

  • 2020@пԺ|cr(nng)I(y)B(ti)о(yu)h(w)߷Q̖

  • 2019@üʡȻƌW(xu)Ȫ

  • 2019@пԺLԺ(yu)h(w)߷Q̖

  • 2019@пԺ|cr(nng)I(y)B(ti)оM(jn)߷Q̖

  • 2019@пԺ|cr(nng)I(y)B(ti)о(yu)h(w)߷Q̖

  • 2019@пԺꄓ(chung)´M(jn)(yu)СMw

  • 2019@пԺLԺ“h”w

  • 2018@пԺ|cr(nng)I(y)B(ti)оM(jn)߷Q̖

  • 2017@пԺ|cr(nng)I(y)B(ti)оM(jn)߷Q̖

  • 2017@õ10íh(hun)ƌW(xu)c̵(zhn)HhCESE2017ƌW(xu)ѿ^檄

  • 2016@ʡȻƌW(xu)Ȫһ

  • 2016@пԺ|cr(nng)I(y)B(ti)оM(jn)߷Q̖

  • 2015@пԺ|cr(nng)I(y)B(ti)оڶӢČW(xu)g(sh)Փ^һȪ

  • 2015@ʡȻƌW(xu)W(xu)g(sh)ɹȪһ

  • 2015@ʡȻƌW(xu)W(xu)g(sh)ɹȪ

  • 2014@14ÇHˮf(xi)"ϵy(tng)cˮȾ"I(y)W(xu)g(sh)hѺһȪһ

  • 2014@пԺ|cr(nng)I(y)B(ti)оM(jn)߷Q̖ 

  • 2013@пԺ|cr(nng)I(y)B(ti)оM(jn)߷Q̖ 

  • 2011@пԺ"AW(xu)"(yu)㲩ʿ

  • 2010@ʡƌW(xu)g(sh)M(jn)Ȫ

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

Ϣ

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

Փģ         

  • Jing Yu, Hui Zhu*, Brian Shutes, et al. Salt-alkalization may potentially promote Microcystis aeruginosa blooms and the production of microcystin-LR. Environmental Pollution. 2022.  https://doi.org/10.1016/j.envpol.2022.118971
  • Rui Cheng, Hui Zhu*, Jingfu Wang, et al. Removal of microcystin (MC-LR) in constructed wetlands integrated with microbial fuel cells: Efficiency, bioelectricity generation and microbial response. Journal of Environemntal Managament. 2022.  https://doi.org/10.1016/j.jenvman.2022.114669
  • Rui Cheng, Shengnan Hou, Jingfu Wang, Hui Zhu*, et al. Biochar-amended constructed wetlands integrated for  eutrophication control and microcystin (MC-LR) removal. Chemosphere. 2022.  https://doi.org/10.1016/j.chemosphere.2022.133830
  • Huiyang Wen, Hui Zhu*, Baixing Yan, et al. High removal of efficiencies of antibiotics and low accumulation of antibiotic resistant genes obtained in microbial fuel cell-constructed wetlands intensified with sponge iron.  Science of the Total Environment. 2022https://doi.org/10.1016/j.scitotenv.2021.150220
  • Huiyang Wen, Hui Zhu*, Yingying Xu, et al. Removal of sulfamethoxazole and Tetracycline in constructed wetlands integerated with microbial fuel cells influenced by influent and operational conditions.  Environmental Pollution. 2021. https://doi.org/10.1016/j.envpol.2020.115988 

  • Xinyi Wang, Hui Zhu*, Baixing Yan, et al. Improving denitrification efficiency in constructed wetlands integrated with immobilized bacteria under high saline conditions. Environmental Pollution. 2021. https://doi.org/10.1016/j.envpol.2021.117592

  • Hui Zhu, Xiangfei Yu, Baixing Yan, et al. Removal of chlorpyrifos and its hydrolytic metabolite in microcosm-scale constructed wetlands under soda saline-alkaline condition: Mass Balance and intensification strategies. Science of the Total Environment. 2021.  https://doi.org/10.1016/j.scitotenv.2021.145956

  • Rui Cheng, Hui Zhu*, Brian Shutes, et al. Treatment of microcystin (MC-LR) and nutrients in eutrophic water by constructed wetlands: performance and microbial community.  Chemosphere. 2021. https://doi.org/10.1016/j.chemosphere.2020.128139

  • Xinyi Wang, Hui Zhu*, Baixing Yan, et al. Bioaugmented constructed wetlands for denitrification of saline wastewater: A boost for both microorganisms and plants. Environment International. 2020.  https://www.sciencedirect.com/science/article/pii/S0160412020303706?via%3Dihub

  • Xin Chen, Hui Zhu*, Baixing Yan, et al. Optimal influent COD/N ratio for obtaining low GHG emissions and high pollutnat removal efficiency in constructed wetlands. Journal of Cleaner Production. 2020. https://www.sciencedirect.com/science/article/pii/S0959652620320503?via%3Dihub

  • Xin Chen, Hui Zhu*, Gary Bañuelos, et al. Biochar reduces nitrous oxide but increases methane emissions in batch wetland mesocosms. Chemical Engineering Journal. 2020. https://www.sciencedirect.com/science/article/pii/S1385894720308330?via%3Dihub

  • Huiyang Wen, Hui Zhu*, Baixing Yan, et al. Treatment of typical antibiotics in constructed wetlands integrated with microbial fuel cells: roles of plant and circuit operation mode. Chemosphere. 2020. https://www.sciencedirect.com/science/article/pii/S0045653520304458

  • Xin Chen, Hui Zhu*, BaixingYan, et al. Greenhouse gas emissions and wastewater treatment performance by three plant species in subsurface flow constructed wetland mesocosms. Chemosphere. 2020. https://www.sciencedirect.com/science/article/pii/S004565351932034X?via%3Dihub

  • Xiangfei Yu,Hui Zhu*, Baixing Yan, et al. Removal of chlophyrifos and its hydrolytic metabolite 3,5,6-trichloro-2-pyridinol in constructed wetlands under soda saline-alkaline condition: effectiveness and influencing factors. Journal of Hazardous Materials. 2019. https://www.sciencedirect.com/science/article/pii/S0304389419303231

  • Hui Zhu, Rui Cheng, Gary Bañuelos*, et al. Feasibility of growing Halophyte "agretti" (Salsola soda) as an alternative boron-tolerant food crop in unproductive boron-laden regions. Plant & Soil. 2019. https://link.springer.com/article/10.1007/s11104-019-04280-x 

  • Yinxiu Liang, Hui Zhu*, Gary Bañuelos, et al. Removal of sulfamethoxazole from salt-laden wastewater in constructed wetlands affected by plant species, salinity levels and co-existing contaminants. Chemical Engineering Journal. 2018.  https://www.sciencedirect.com/science/article/pii/S1385894718302602

  • Hui Zhu, Gary Banuelos. Evaluation of two hybrid poplar clones as constructed wetland plant species for treating saline water high in boron and selenium, or waters only high in boron. Journal of Hazardous Materials. 2017. https://www.sciencedirect.com/science/article/pii/S0304389417302078

  • Hui Zhu, Alicia A. Taylor , Savina R. Astor , et al. Feasibility of growing halophyte "agretti" (Salsola soda) as an alternative boron-tolerant food crop in unproductive boron-laden regions. Plant Soil. 2017. https://link.springer.com/article/10.1007/s11104-016-3051-6

  • Yinxiu Liang, Hui Zhu*, Gary Banuelos, et al. Constructed wetlands for saline wastewater treatment: A review. Ecological Engineering. 2017. https://www.sciencedirect.com/science/article/pii/S0925857416306279

  • Yinxiu Liang, Hui Zhu*, Gary Banuelos, et al. Removal of nutrients in saline wastewater using constructed wetlands: Plant species, influent loads and salinity levels as influencing factors. Chemosphere. 2017.   https://www.sciencedirect.com/science/article/pii/S0045653517313103

  • Hui Zhu, Gary Banuelos.Influence of salinity and boron on germination, seedling growth and transplanting mortality of guayule: A combined growth chamber and greenhouse study. Industrial Crops and Products. 2016. https://www.sciencedirect.com/science/article/pii/S0926669016304769

 

  • l(f):  һԁ}鵪Դ}(x)䑪(yng), 1, ̖ZL201910441584.9

  • l(f):  һN}Ó΢ϼƂ䷽͑(yng), 1̖: 202011077561.3

  • l(f):  һ}ķ(x)䑪(yng), 1, ̖ZL201910441591.9

  • l(f): һN}ݷNӰl(f)ѿʵķ, 1, ̖: ZL 201510427771.3

  • l(f): һN͵ԴȾ(c)BB(ti)﹡, 3, ̖: ZL201310373032.1

  • l(f):  һNB(ti){(dio)˹؏(qing)̼ͬȥϵy(tng), 4, ̖: ZL201510236212.4.

  • l(f): һNͰϵƂ, 3, ̖: 201010622074.0

  • l(f): ֳʽ϶ˮɘ, 4, ̖:201010592968.X

  • l(f): һNڿr(nng)ˮе׵B(ti)O(sh)Ӌ, 3, ̖: 201210504156.4.

  • l(f): ЙC(j)ʼ, 5, ̖: 201310250215.4.

  • l(f): һNˮ|(zh)Ŀĵ̿\ֲ, 3, ̖: 201510309062.5.

  • l(f): һNÓܵ΢͹w̼Դϵy(tng)ˇ, 4, ̖: 201610147301.6



 

ʿоTʿ(do)ʡμℓ(chung)˲šF(xin)пԺB(ti)ch(hun)c(din)(sh)(yn)ҸпԺꄓ(chung)´M(jn)ƌW(xu)֕LHˮf(xi)ЇίTίTIWA-China YWP)HؿƌW(xu)ҌW(xu)SWSTЇB(ti)W(xu)W(xu)깤ίTίTЇh(hun)ƌW(xu)W(xu)h(hun)،W(xu)֕ίTҪԴȾγ^cC(j)ȾˮwB(ti)g(sh)cՓֲޏ(f)Ⱦh(hun)Оc򻯌W(xu)^̵ȷоևȻƌW(xu)ϻ973Ӌn}c(din)аl(f)(xing)n}ȿ(xing)Ŀ10(xing)@ʡȻƌW(xu)Ȫ2(xing)ʡȻƌW(xu)W(xu)g(sh)ɹȪ2(xing)@пԺA(yu)㲩ʿl(f)W(xu)g(sh)Փ80ƪԵһ/ͨӍ߰l(f)SCIՓ40ƪՓı1000@ڙ(qun)Ұl(f)5(xing)(dn)·HSCIڿWetlandsSCIڿChinese Geographical ScienceίCSCDڿؿƌW(xu)ί [1] 
 
 
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2014-11--2015-11 ݴW(xu)У LW(xu)
2013-12--2018.11 ЇƌW(xu)Ժ|cr(nng)I(y)B(ti)о оT
2011-07--2013-11 ЇƌW(xu)Ժ|cr(nng)I(y)B(ti)о оT [1] 
 

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  • Xin Chen, Hui Zhu*, Gary Bañuelos, et al Biochar reduces nitrous oxide but increases methane emissions in batch wetland mesocosms. Chemical Engineering Journal. 2020.
  • Xinyi Wang, Hui Zhu*, Baixing Yan, et alBioaugmented constructed wetlands for denitrofication of saline wastewater: A boost for both microorganisms and plants. Environment International. 2020.
  • Xin Chen, Hui Zhu*, Baixing Yan, et al. Optimal influent COD/N ratio for obtaining low GHG emissions and high pollutnat removal efficiency in constructed wetlands. Journal of Cleaner Production. 2020.
  • Huiyang Wen, Hui Zhu*, Baixing Yan, et alTreatment of typical antibiotics in constructed wetlands integrated with microbial fuel cells: roles of plant and circuit operation mode. Chemosphere. 2020.
  • Xin Chen, Hui Zhu*, BaixingYan, et al. Greenhouse gas emissions and wastewater treatment performance by three plant species in subsurface flow constructed wetland mesocosms. Chemosphere. 2020, 239:124795.
  • Xiangfei Yu,Hui Zhu*, Baixing Yan, et al. Removal of chlophyrifos and its hydrolytic metabolite 3,5,6-trichloro-2-pyridinol in constructed wetlands under soda saline-alkaline condition: effectiveness and influencing factors. Journal of Hazardous Materials. 2019, 373:67-74.
  • Hui Zhu, Rui Cheng, Gary Bañuelos*, et al. Feasibility of growing Halophyte "agretti" (Salsola soda) as an alternative boron-tolerant food crop in unproductive boron-laden regions. Plant & Soil. 2019.
  • Yinxiu Liang, Hui Zhu*, Gary Bañuelos, et al. Removal of sulfamethoxazole from salt-laden wastewater in constructed wetlands affected by plant species, salinity levels and co-existing contaminants. Chemical Engineering Journal. 2018, 341:462-470.
  • Hui Zhu, Gary Banuelos. Evaluation of two hybrid poplar clones as constructed wetland plant species for treating saline water high in boron and selenium, or waters only high in boron. Journal of Hazardous Materials. 2017, 333: 319-328.
  • Hui Zhu, Alicia A. Taylor , Savina R. Astor , et al. Feasibility of growing halophyte "agretti" (Salsola soda) as an alternative boron-tolerant food crop in unproductive boron-laden regions. Plant Soil. 2017, 412:189-199.
  • Yinxiu Liang, Hui Zhu*, Gary Banuelos, Baixing Yan, Qingwei Zhou, Xiangfei Yu, Xianwei Cheng.Constructed wetlands for saline wastewater treatment: A review. Ecological Engineering. 2017,98: 275-285.
  • Yinxiu Liang, Hui Zhu*, Gary Banuelos, Baixing Yan, Brian Shutes, Xianwei Cheng, Xin Chen. Removal of nutrients in saline wastewater using constructed wetlands: Plant species, influent loads and salinity levels as influencing factors. Chemosphere. 2017,187:52-61.
  • Hui Zhu, Gary Banuelos.Influence of salinity and boron on germination, seedling growth and transplanting mortality of guayule: A combined growth chamber and greenhouse study. Industrial Crops and Products. 2016, 92: 236-243.
  • Hui Zhu*, Baixing Yan, Yingying Xu, Jiunian Guan, Shuyuan Liu. Removal of nitrogen and COD in horizontal subsurface flow constructed wetlands under different influent C/N ratios. Ecological engineering. 2014, 63:58-63.
 
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