

浏览全部资源
扫码关注微信
1.华南农业大学,生命科学学院,广东 广州 510642
2.广东省科学院微生物研究所,华南应用微生物国家重点实验室,广东省菌种保藏与应用重点实验室,广东 广州 510070
3.广东省环境保护微生物与区域生态安全重点实验室,广东 广州 510070
4.华南农业大学,农学院,广东 广州 510642
5.广州市净水有限公司,广东省污水处理及污泥资源化工程技术研究中心,广东 广州 510655
Online First:04 August 2026,
移动端阅览
姚智凯, 陈乐天, 谭小萍, 李吉宏, 贾伟彬, 许玫英. 光催化-生物杂合系统强化污染物降解的研究进展:从功能组装到理性设计[J]. 合成生物学, 2026, 7. DOI: 10.12211/2096-8280.2026-053
YAO Zhikai, CHEN Letian, TAN Xiaoping, LI Jihong, JIA Weibin, XU Meiying. Advances in Enhanced Pollutant Degradation by Photocatalysis-Biohybrid Systems: From Functional Assembly to Rational Design[J]. Synthetic Biology Journal, 2026, 7. DOI: 10.12211/2096-8280.2026-053
姚智凯, 陈乐天, 谭小萍, 李吉宏, 贾伟彬, 许玫英. 光催化-生物杂合系统强化污染物降解的研究进展:从功能组装到理性设计[J]. 合成生物学, 2026, 7. DOI: 10.12211/2096-8280.2026-053 DOI:
YAO Zhikai, CHEN Letian, TAN Xiaoping, LI Jihong, JIA Weibin, XU Meiying. Advances in Enhanced Pollutant Degradation by Photocatalysis-Biohybrid Systems: From Functional Assembly to Rational Design[J]. Synthetic Biology Journal, 2026, 7. DOI: 10.12211/2096-8280.2026-053 DOI:
环境中难降解污染物的持续累积对生态安全和人类健康构成了严重威胁。光催化-生物杂合系统(Photocatalysis-Biohybrid Systems, PBS)通过将光催化材料与非光敏微生物耦合,能够在太阳能驱动下实现污染物的高效降解与转化。然而,当前面向污染物降解的PBS多停留在“材料+天然单菌”的经验组装阶段,面临跨界电子传递受限、胞内还原力非定向分流及降解代谢路径不完整等核心瓶颈,严重制约了其性能提升与工程应用。本文系统概述了PBS的协同作用机制、结构特征及其关键影响因素,总结了其在抗生素、多环芳烃、金属离子及微塑料等典型污染物降解中的最新应用进展,同时重点围绕合成微生物组构建、电子传递链重构以及材料界面优化等核心策略,深入分析了强化杂合系统的有效途径。最后,本文探讨了PBS当前面临的跨界面电子传递效率低、降解路径不完整及系统稳定性不足等核心挑战,并展望了通过合成微生物组构建、电子传递链定向调控以及群落-材料界面的协同适配等策略实现理性设计与工程化应用的未来前景。本文旨在推动PBS从经验驱动的“简单功能组装”向可预测、可调控的“理性系统设计”转变,为构建高效、稳定、可控的污染物降解系统提供理论依据与技术参考。
The continuous and pervasive accumulation of recalcitrant pollutants in the natural environment poses a progressively severe threat to global ecological security and human health. Conventional remediation technologies often struggle to completely mineralize these complex compounds. To address this critical issue
Photocatalysis-Biohybrid Systems (PBS) have emerged as a promising
sustainable strategy. These systems enable the efficient degradation and structural transformation of persistent pollutants driven directly by solar energy by seamlessly coupling semiconductor photocatalytic materials with non-photosynthetic microorganisms. By bridging abiotic light-harvesting components with whole-cell biocatalysts
PBS cleverly harness the strengths of both fields. However
current PBS configurations for environmental pollutant degradation largely remain at the rudimentary
empirical assembly stage
heavily relying on the "material + natural single strain" paradigm. Consequently
they face several core bottlenecks
such as restricted cross-interface electron transfer efficiency between inorganic materials and biological membranes
the non-directional diversion of intracellular reducing power
and incomplete microbial degradation metabolic pathways. These intrinsic limitations severely restrict their overall performance enhancement
operational stability
and subsequent large-scale engineering applications. To overcome these barriers
this comprehensive review systematically outlines the fundamental synergistic mechanisms
structural design characteristics
and key environmental influencing factors of various PBS architectures. It critically summarizes recent application advances in the targeted degradation of typical environmental pollutants
including antibiotics
polycyclic aromatic hydrocarbons (PAHs)
heavy metal ions
and emerging microplastics. Furthermore
the review provides an in-depth
mechanistic analysis of effective pathways for systematic enhancement. Particular focus is directed toward core optimization strategies
such as synthetic microbiome construction for multi-step degradation
targeted electron transport chain reconstruction to boost energy utilization
and material interface optimization to enhance biocompatibility and electron transfer rates. Finally
this paper discusses the core challenges currently facing PBS
including low cross-interface electron transfer efficiency
incomplete degradation pathways
and insufficient system stability. It further highlights future prospects for achieving rational design and engineering applications through advanced strategies
such as the construction of synthetic microbiomes
the targeted regulation of electron transport chains
and the synergistic adaptation of community-material interfaces. Ultimately
this review aims to drive the fundamental transition of PBS research from an experience-driven "simple functional assembly" to a predictable
robust
and controllable "rational system design". By doing so
it provides a crucial theoretical basis and technical reference for the future development of highly efficient
stable
and scientifically controllable pollutant degradation systems globally.
2
Li R , Zhu L , Yang K , et al . Impact of urbanization on antibiotic resistome in different microplastics: evidence from a large-scale whole river analysis [J ] . Environmental Science & Technology , 2021 ( 55 ): 8760 - 8770 .
Wang Y , Yang Y , Liu X , et al . Interaction of microplastics with antibiotics in aquatic environment: distribution, adsorption, and toxicity [J ] . Environmental Science & Technology , 2021 ( 55 ): 15579 - 15595 .
Niu L , Liu W , Juhasz A , et al . Emerging contaminants antibiotic resistance genes and microplastics in the environment: introduction to 21 review articles published in crest during 2018-2022 [J ] . Critical Reviews in Environmental Science and Technology , 2022 ( 52 ): 4135 - 4146 .
Satish G , Ashokrao D M , Arun S K . Microbial degradation of pesticide: a review [J ] . African Journal of Microbiology Research , 2017 ( 11 ): 992 - 1012 .
Mishra T , Tiwari P B , Kanchan S , et al . Advances in microbial bioremediation for effective wastewater treatment [J ] . Water , 2025 ( 17 ): 3196 .
Dangi A K , Sharma B , Hill R T , et al . Bioremediation through microbes: systems biology and metabolic engineering approach [J ] . Critical Reviews in Biotechnology , 2019 ( 39 ): 79 - 98 .
Sakimoto K K , Wong A B , Yang P . Self-photosensitization of nonphotosynthetic bacteria for solar-to-chemical production [J ] . Science , 2016 ( 351 ): 74 - 77 .
Song W , Quek G , Short M I , et al . Designing microbe-semiconductor interfaces for semibiological photosynthesis [J ] . Chemical Reviews , 2026 ( 126 ): 4656 - 4705 .
Yu Y , Guo S , Lv S , et al . Eradicating the photogenerated holes in a photocatalyst-microbe hybrid system: a review [J ] . ACS Applied Materials & Interfaces , 2024 ( 16 ): 56545 - 56554 .
Fang X , Kalathil S , Reisner E . Semi-biological approaches to solar-to-chemical conversion [J ] . Chemical Society Reviews , 2020 ( 49 ): 4926 - 4952 .
Wang X , Li H , Wang K , et al . Photoelectron-driven modulation of carbon metabolism enhances hydrogen production in a ZnIn 2 S 4 - Shewanella oneidensis biohybrid system [J ] . Bioresource Technology , 2026 ( 448 ): 134285 .
Dong G , Wang H , Yan Z , et al . Cadmium sulfide nanoparticles-assisted intimate coupling of microbial and photoelectrochemical processes: mechanisms and environmental applications [J ] . Science of the Total Environment , 2020 ( 740 ): 140080 .
Dong G , Chen Y , Yan Z , et al . Recent advances in the roles of minerals for enhanced microbial extracellular electron transfer [J ] . Renewable and Sustainable Energy Reviews , 2020 ( 134 ): 110404 .
Wang X , Zhang J , Li K , et al . Photocatalyst-mineralized biofilms as living bio-abiotic interfaces for single enzyme to whole-cell photocatalytic applications [J ] . Science Advances , 2022 (8): eabm7665.
Cui S , Tian L , Li J , et al . Light-assisted fermentative hydrogen production in an intimately-coupled inorganic-bio hybrid with self-assembled nanoparticles [J ] . Chemical Engineering Journal , 2022 ( 428 ): 131254 .
Pan X , Li W , Fang Y , et al . Semi-artificial photosynthetic system based on TiO 2 /chlorophyll composite and microalgae for N 2 fixation [J ] . Chemical Engineering Journal , 2023 ( 475 ): 146179 .
Xiao K , Liang J , Wang X , et al . Panoramic insights into semi-artificial photosynthesis: origin, development, and future perspective [J ] . Energy & Environmental Science , 2022 ( 15 ): 529 - 549 .
Wu D , Zhang W , Fu B , et al . Living intracellular inorganic-microorganism biohybrid system for efficient solar hydrogen generation [J ] . Joule , 2022 ( 6 ): 2293 - 2303 .
Cestellos-Blanco S , Zhang H , Kim J M , et al . Photosynthetic semiconductor biohybrids for solar-driven biocatalysis [J ] . Nature Catalysis , 2020 ( 3 ): 245 - 255 .
Wang X , Chen L , Liu T , et al . Rgo-augmented photosynthetic biohybrid system for biohydrogen production: regulatory mechanisms and wastewater treatment applications [J ] . ACS ES&T Engineering , 2024 ( 5 ): 932 - 941 .
宋浩 , 张妍 , 刘其敬 . 无机纳米材料-微生物杂合系统的研究进展 [J ] . 天津大学学报(自然科学与工程技术版) , 2026 ( 59 ): 1 - 16 .
SONG Hao , ZHANG Yan , LIU Qijing . Research progress of inorganic nanomaterial-microorganism hybrid systems [J ] . Journal of Tianjin University (Science and Technology) , 2026 ( 59 ): 1 - 16 .
王凯冲 , 汪涵 , 王亚宜 . 基于半导体和微生物的光驱动全细胞杂合体研究 [J ] . 化学进展 , 2025 ( 37 ): 157 - 172 .
WANG Kaichong , WANG Han , WANG Yayi . Research on light-driven whole-cell hybrids based on semiconductors and microorganisms [J ] . Progress in Chemistry , 2025 ( 37 ): 157 - 172 .
邹雨泰 , 王文硕 , 刘健 . 聚合物-微生物杂合体的构建及催化应用 [J ] . 化学进展 , 2024 ( 36 ): 815 - 826 .
ZOU Yutai , WANG Wenshuo , LIU Jian . Construction and catalytic applications of polymer-microorganism hybrids [J ] . Progress in Chemistry , 2024 ( 36 ): 815 - 826 .
Liang J , Xiao K , Wang X , et al . Revisiting solar energy flow in nanomaterial-microorganism hybrid systems [J ] . Chemical Reviews , 2024 ( 124 ): 9081 - 9112 .
Zhao S , Liu Q , Li Y , et al . The role of semi-artificial photosynthetic systems in energy and environmental solutions: a critical review [J ] . Biofuel Research Journal , 2024 ( 11 ): 2082 - 2098 .
Li J , Wang F , Zhang J , et al . Inward-to-outward assembly of amine-functionalized carbon dots and polydopamine to Shewanella oneidensis MR-1 for high-efficiency, microbial-photoreduction of Cr (VI) [J ] . Chemosphere , 2022 ( 307 ): 135980 .
Tao M , Jin C , Lu H , et al . Living and regenerative material encapsulating self-assembled Shewanella oneidensis -CdS hybrids for photocatalytic biodegradation of organic dyes [J ] . Microorganisms , 2022 ( 10 ): 2501 .
Gao F , Liu G , Chen A , et al . Artificial photosynthetic cells with biotic-abiotic hybrid energy modules for customized CO 2 conversion [J ] . Nature Communications , 2023 ( 14 ): 6783 .
Zhang L , Wang Y . Decoupled artificial photosynthesis [J ] . Angewandte Chemie International Edition , 2023 ( 62 ): e202219076 .
Wang H , Zhang L , Chen Z , et al . Semiconductor heterojunction photocatalysts: design, construction, and photocatalytic performances [J ] . Chemical Society Reviews , 2014 ( 43 ): 5234 - 5244 .
Xiao Y , Qian Y , Chen A , et al . An artificial photosynthetic system with CO 2 -reducing solar-to-fuel efficiency exceeding 20% [J ] . Journal of Materials Chemistry A , 2020 ( 8 ): 18310 - 18317 .
Kudo A , Miseki Y . Heterogeneous photocatalyst materials for water splitting [J ] . Chemical Society Reviews , 2009 ( 38 ): 253 - 278 .
Mussgnug J H , Thomas Hall S , Rupprecht J , et al . Engineering photosynthetic light capture: impacts on improved solar energy to biomass conversion [J ] . Plant Biotechnology Journal , 2007 ( 5 ): 802 - 814 .
Liu C , Gallagher J J , Sakimoto K K , et al . Nanowire-bacteria hybrids for unassisted solar carbon dioxide fixation to value-added chemicals [J ] . Nano Letters , 2015 ( 15 ): 3634 - 3639 .
Li J , Zhang M , Li Q , et al . Enhanced visible light activity on direct contact Z-scheme g-C 3 N 4 -TiO 2 photocatalyst [J ] . Applied Surface Science , 2017 ( 391 ): 184 - 193 .
Jiang X , Duan Y , Tian Y , et al . Facile one-pot hydrothermal method to prepare Sn (II) and N co-doped TiO 2 photocatalyst for water splitting under visible light irradiation [J ] . Rare Metals , 2022 ( 41 ): 406 - 414 .
Zhang D , Xu G , Chen F . Hollow spheric Ag-Ag 2 S/TiO 2 composite and its application for photocatalytic reduction of Cr(VI) [J ] . Applied Surface Science , 2015 ( 351 ): 962 - 968 .
Lv X , Huang W , Gao Y , et al . Boosting solar hydrogen production via electrostatic interaction mediated E.coli -TiO 2 -x biohybrid system [J ] . Nano Research , 2024 ( 17 ): 5390 - 5398 .
Ye J , Yu J , Zhang Y , et al . Light-driven carbon dioxide reduction to methane by Methanosarcina barkeri -CdS biohybrid [J ] . Applied Catalysis B: Environmental , 2019 ( 257 ): 117916 .
Shi Y , Zhang K , Chen J , et al . Long-term autotrophic growth and solar-to-chemical conversion in Shewanella oneidensis MR-1 through light-driven electron transfer [J ] . Angewandte Chemie International Edition , 2024 ( 63 ): e202412072 .
Dong H , Yang Q , Yang Z , et al . Enabling high-efficiency plasmon-induced visible-light-driven reduction of hexavalent chromium with Au-TiO 2 / Shewanella biohybrid [J ] . Applied Surface Science , 2025 ( 684 ): 161822 .
Yang G , Wei L , Lv Y , et al . Photo-assisted enhancement of uranium mine wastewater purification by a self-assembled Shewanella putrefaciens -CdS biohybrid system [J ] . ACS Materials Letters , 2024 ( 6 ): 4606 - 4616 .
Shi S , Zeng C , Si T , et al . Photobiocatalytic solar fuel and solar chemical conversion: sufficient activity and better selectivity [J ] . ACS ES&T Engineering , 2022 ( 2 ): 989 - 1000 .
Liu G , Gao F , Zhang H , et al . Biosynthetic CdS- Thiobacillus thioparus hybrid for solar-driven carbon dioxide fixation [J ] . Nano Research , 2023 ( 16 ): 4531 - 4538 .
Wang X , Niu M , Fan J , et al . Photoelectric bacteria enhance the in situ production of tetrodotoxin for antitumor therapy [J ] . Nano Letters , 2021 ( 21 ): 4270 - 4279 .
Kracke F , Vassilev I , Krömer J O . Microbial electron transport and energy conservation-the foundation for optimizing bioelectrochemical systems [J ] . Frontiers in Microbiology , 2015 (Volume 6 - 2015 ).
Filman D J , Marino S F , Ward J E , et al . Cryo-em reveals the structural basis of long-range electron transport in a cytochrome-based bacterial nanowire [J ] . Communications Biology , 2019 ( 2 ): 219 .
Krige A , Sjöblom M , Ramser K , et al . On-line raman spectroscopic study of cytochromes' redox state of biofilms in microbial fuel cells [J ] . Molecules , 2019 ( 24 ): 646 .
Liu S , Yi X , Wu X , et al . Internalized carbon dots for enhanced extracellular electron transfer in the dark and light [J ] . Small , 2020 ( 16 ): 2004194 .
Huang S , Tang J , Liu X , et al . Fast light-driven biodecolorization by a Geobacter sulfurreducens -CdS biohybrid [J ] . ACS Sustainable Chemistry & Engineering , 2019 ( 7 ): 15427 - 15433 .
Yang K , Wei W , Xie X , et al . Harnessing solar energy for the photocatalytic reduction of hexavalent chromium: a high-performance Yarrowia lipolytica -CdS biohybrid system [J ] . ACS Applied Materials & Interfaces , 2025 ( 17 ): 28327 - 28335 .
Honda Y , Watanabe M , Hagiwara H , et al . Inorganic/whole-cell biohybrid photocatalyst for highly efficient hydrogen production from water [J ] . Applied Catalysis B: Environmental , 2017 ( 210 ): 400 - 406 .
Rowe S F , Le Gall G , Ainsworth E V , et al . Light-driven H 2 evolution and c=c or c=o bond hydrogenation by Shewanella oneidensis : a versatile strategy for photocatalysis by nonphotosynthetic microorganisms [J ] . ACS Catalysis , 2017 ( 7 ): 7558 - 7566 .
Wang Y , Jin M , Wang J , et al . Light-driven biodegradation of azo dyes by Shewanella decolorationis -CdS biohybrid in wastewater lacking electron donors [J ] . Applied Microbiology and Biotechnology , 2023 ( 107 ): 447 - 457 .
Zhang H , Liu H , Tian Z , et al . Bacteria photosensitized by intracellular gold nanoclusters for solar fuel production [J ] . Nature Nanotechnology , 2018 ( 13 ): 900 - 905 .
Rabaey K , Rozendal R A . Microbial electrosynthesis-revisiting the electrical route for microbial production [J ] . Nature Reviews Microbiology , 2010 ( 8 ): 706 - 716 .
Liu Q , Xu W , Ding Q , et al . Engineering Shewanella oneidensis -carbon felt biohybrid electrode decorated with bacterial cellulose aerogel-electropolymerized anthraquinone to boost energy and chemicals production [J ] . Advanced Science , 2024 ( 11 ): 2407599 .
Kim J , Cestellos-Blanco S , Shen Y , et al . Enhancing biohybrid CO 2 to multicarbon reduction via adapted whole-cell catalysts [J ] . Nano Letters , 2022 ( 22 ): 5503 - 5509 .
Zhang Y , Feng T , Zhou X , et al . Photoelectrocatalytic-microbial biohybrid for nitrogen reduction [J ] . Advanced Materials , 2024 ( 36 ): 2407239 .
Aulenta F , Catervi A , Majone M , et al . Electron transfer from a solid-state electrode assisted by methyl viologen sustains efficient microbial reductive dechlorination of TCE [J ] . Environmental Science & Technology , 2007 ( 41 ): 2554 - 2559 .
Jiang Y , Tian B . Inorganic semiconductor biointerfaces [J ] . Nature Reviews Materials , 2018 ( 3 ): 473 - 490 .
Weliwatte N S , Minteer S D . Photo-bioelectrocatalytic CO 2 reduction for a circular energy landscape [J ] . Joule , 2021 ( 5 ): 2564 - 2592 .
Yang P . Liquid sunlight: the evolution of photosynthetic biohybrids [J ] . Nano Letters , 2021 ( 21 ): 5453 - 5456 .
Guo J , Suástegui M , Sakimoto K K , et al . Light-driven fine chemical production in yeast biohybrids [J ] . Science , 2018 ( 362 ): 813 - 816 .
Xiong J , Cao Y , Zhao H , et al . Cooperative antibacterial enzyme-Ag-polymer nanocomposites [J ] . ACS Nano , 2022 ( 16 ): 19013 - 19024 .
Robertson I L B , Zhang H , Reisner E , et al . Engineering of bespoke photosensitiser-microbe interfaces for enhanced semi-artificial photosynthesis [J ] . Chemical Science , 2024 ( 15 ): 9893 - 9914 .
Mutalik C , Okoro G , Krisnawati D I , et al . Copper sulfide with morphology-dependent photodynamic and photothermal antibacterial activities [J ] . Journal of Colloid and Interface Science , 2022 ( 607 ): 1825 - 1835 .
Okoro G , Husain S , Saukani M , et al . Emerging trends in nanomaterials for photosynthetic biohybrid systems [J ] . ACS Materials Letters , 2022 ( 5 ): 95 - 115 .
Kornienko N , Zhang J Z , Sakimoto K K , et al . Interfacing nature's catalytic machinery with synthetic materials for semi-artificial photosynthesis [J ] . Nature Nanotechnology , 2018 ( 13 ): 890 - 899 .
Ko Y , Kim J W , Lee J A , et al . Tools and strategies of systems metabolic engineering for the development of microbial cell factories for chemical production [J ] . Chemical Society Reviews , 2020 ( 49 ): 4615 - 4636 .
Buller R , Lutz S , Kazlauskas R J , et al . From nature to industry: harnessing enzymes for biocatalysis [J ] . Science , 2023 (382): eadh8615.
Yu M , Wang J , Tang L , et al . Intimate coupling of photocatalysis and biodegradation for wastewater treatment: mechanisms, recent advances and environmental applications [J ] . Water Research , 2020 ( 175 ): 115673 .
Yang M , Qiu S , Wang L , et al . Effect of short-term light irradiation with varying energy densities on the activities of nitrifiers in wastewater [J ] . Water Research , 2022 ( 216 ): 118291 .
Kamel F H , Saeed C H , Hassan N I . Comparative effect of different visible light energy on bacterial growth [J ] . International Journal of Advanced Research , 2016 ( 4 ): 263 - 270 .
Pavliuk M V , Cai B , Kurth L , et al . Organic materials for biohybrid photocatalysis and photoelectrochemical devices [J ] . Chemical Reviews , 2026 ( 126 ): 5877 - 5919 .
Honda Y , Hagiwara H , Ida S , et al . Application to photocatalytic H 2 production of a whole-cell r eaction by recombinant Escherichia coli cells expressing [FeFe ] -hydrogenase and maturases genes [J ] . Angewandte Chemie , 2016 ( 128 ): 8177 - 8180 .
Xiao X , Ma X , Liu Z , et al . Degradation of rhodamine B in a novel bio-photoelectric reductive system composed of Shewanella oneidensis MR-1 and Ag 3 PO 4 [J ] . Environment International , 2019 ( 126 ): 560 - 567 .
Liu P , Ma X , Li T , et al . Elucidation of photodegradation of p-chlorophenol in a biophotoelectric reductive degradation system by density functional theory calculations [J ] . International Biodeterioration & Biodegradation , 2020 ( 151 ): 104969 .
Si Q , Feng X , Teng Y , et al . Constructing effective and low-toxic removal of combined contaminants by intimately coupled Z-scheme heterojunction photocatalysis and biodegradation system [J ] . Applied Catalysis B: Environment and Energy , 2025 ( 365 ): 124909 .
Pi S , Yang W , Feng W , et al . Solar-driven waste-to-chemical conversion by wastewater-derived semiconductor biohybrids [J ] . Nature Sustainability , 2023 ( 6 ): 1673 - 1684 .
Ye J , Chen Y , Gao C , et al . Sustainable conversion of microplastics to methane with ultrahigh selectivity by a biotic-abiotic hybrid photocatalytic system [J ] . Angewandte Chemie , 2022 ( 134 ): e202213244 .
Nichols E M , Gallagher J J , Liu C , et al . Hybrid bioinorganic approach to solar-to-chemical conversion [J ] . Proceedings of the National Academy of Sciences of the USA , 2015 ( 112 ): 11461 - 11466 .
Zhang Y , Fang F , Qian X , et al . Semiconductor biohybrids for enhanced bifunctional wastewater sulfur and heavy metal removal [J ] . Green Chemistry , 2024 ( 26 ): 3940 - 3948 .
Wen X , Hou Y , Guo J , et al . Mechanistic insight into enhanced methyl orange degradation by Raoultella planticola /MoS 2 biohybrid: implication for electron transfer and microbial metabolism [J ] . Journal of Cleaner Production , 2024 ( 469 ): 143201 .
Wang Y , Dai H , Jin M , et al . Light-driven biodegradation of chloramphenicol by photosensitized Shewanella oneidensis MR-1 [J ] . Bioresource Technology , 2024 ( 413 ): 131508 .
Cui S , Si Y , Fu X , et al . Intracellularly-photosensitized bio-hybrid with biogenic quantum dots for enhanced wastewater denitrification [J ] . Chemical Engineering Journal , 2023 ( 457 ): 141237 .
Zhang Y , Xie J , Liu M , et al . Microbial community functional structure in response to antibiotics in pharmaceutical wastewater treatment systems [J ] . Water Research , 2013 ( 47 ): 6298 - 6308 .
Gao T , Li Y , Dai K , et al . Electric syntrophy-driven modulation of Fe 0 -dependent microbial denitrification [J ] . Water Research , 2025 ( 268 ): 122722 .
Zhao Z , Omer A A , Qin Z , et al . Cu/N-codoped TiO 2 prepared by the sol-gel method for phenanthrene removal under visible light irradiation [J ] . Environmental Science and Pollution Research , 2020 ( 27 ): 17530 - 17540 .
Franco S S , Nardocci A C , Günther W M R . Pah biomarkers for human health risk assessment: a review of the state-of-the-art [J ] . Cadernos de Saúde Pública , 2008 ( 24 ): a569 - a580 .
Moscoso F , Teijiz I , Deive F J , et al . Efficient pahs biodegradation by a bacterial consortium at flask and bioreactor scale [J ] . Bioresource Technology , 2012 ( 119 ): 270 - 276 .
Qin Z , Zhao Z , Jiao W , et al . Phenanthrene removal and response of bacterial community in the combined system of photocatalysis and pah-degrading microbial consortium in laboratory system [J ] . Bioresource Technology , 2020 ( 301 ): 122736 .
Su C , Cui H , Wang W , et al . Bioremediation of complex organic pollutants by engineered vibrio natriegens [J ] . Nature , 2025 ( 642 ): 1024 - 1033 .
Ye J , Wang C , Gao C , et al . Solar-driven methanogenesis with ultrahigh selectivity by turning down H 2 production at biotic-abiotic interface [J ] . Nature Communications , 2022 ( 13 ): 6612 .
Song W , Liu Y , Wu Y , et al . Single-atom bridges across biotic-abiotic interfaces facilitate direct electron transfer for solar-to-chemical conversion [J ] . Nature Communications , 2025 ( 16 ): 6708 .
Zuo W , Yu Y , Huang H . Making waves: microbe-photocatalyst hybrids may provide new opportunities for treating heavy metal polluted wastewater [J ] . Water Research , 2021 ( 195 ): 116984 .
Sun P , Xing Z , Li Z , et al . Recent advances in quantum dots photocatalysts [J ] . Chemical Engineering Journal , 2023 ( 458 ): 141399 .
Guan X , Erşan S , Hu X , et al . Maximizing light-driven CO 2 and N 2 fixation efficiency in quantum dot-bacteria hybrids [J ] . Nature Catalysis , 2022 ( 5 ): 1019 - 1029 .
Ding Y , Bertram J R , Eckert C , et al . Nanorg microbial factories: light-driven renewable biochemical synthesis using quantum dot-bacteria nanobiohybrids [J ] . Journal of the American Chemical Society , 2019 ( 141 ): 10272 - 10282 .
Gai P , Yu W , Zhao H , et al . Solar-powered organic semiconductor-bacteria biohybrids for CO 2 reduction into acetic acid [J ] . Angewandte Chemie International Edition , 2020 ( 59 ): 7224 - 7229 .
Jiang Z , Wang B , Jimmy C Y , et al . AglnS 2 /ln 2 S 3 heterostructure sensitization of Escherichia coli for sustainable hydrogen production [J ] . Nano Energy , 2018 ( 46 ): 234 - 240 .
Xu W , Liu Q , Ding Q , et al . Modular engineering a Shewanella oneidensis -CdS@ rgo artificial photosynthetic biohybrid to accelerate photoelectron transfer and conversion for enhanced hydrogen production [J ] . Green Chemistry , 2025 ( 27 ): 12389 - 12402 .
Feng T , Zhou X , Zhang Y , et al . Photoelectrocatalytic-microbial biohybrid for succinic acid synthesis [J ] . Nature Communications , 2026 .
Yu X , Li H , Bao S , et al . Self-assembled protein cages in living bacterial photocatalysis: modular design achieves selective regeneration of NADH and efficient CO 2 fixation [J ] . Advanced Functional Materials , 2026 ( 36 ): e13487 .
0
Views
0
下载量
0
CSCD
Publicity Resources
Related Articles
Related Author
Related Institution
京公网安备11010102004073号