Engineering Biotic–Abiotic Interfaces of Semi-artificial Photosynthetic Systems for Solar-Driven CO2 Conversion

Semi-artificial photosynthetic systems (SAPSs) integrate the superior light-responsive capabilities of semiconductors with the high selectivity of microbial biocatalysts, offering a pathway for CO2 mitigation and sustainable energy conversion. The performance of SAPSs is primarily constrained by limited CO2 enrichment, inefficient electron transfer, and the low added value of products. To address these challenges, material engineering strategies, including dimension regulation, surface functionalization, and band gap engineering, are employed to enhance CO2 enrichment, charge separation, and electron transfer. Meanwhile, microbial engineering further improves product selectivity through heterologous expression and enzyme engineering, enabling the biosynthesis of value-added chemicals. At the system level, interfacial coupling and electron-transfer mechanisms are systematically analyzed to elucidate electron transport pathways and guide interface optimization. Furthermore, a multidimensional performance evaluation framework is established to systematically compare representative SAPS combinations, C1-Cn product distribution, and solar-to-chemical conversion efficiency, which provides quantitative insights. The environmental influences of light, temperature, and others on biohybrid stability, and carbon-fixation performance are also critically discussed. Finally, future optimization perspectives at molecular level are presented from microbial carbon fixation to the engineering large-scale upgrading of SAPSs.

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Publication Details

Journal
ACS Applied Materials & Interfaces
Published
2026-10-03
DOI
https://doi.org/10.1021/acsami.6c13901
Primary Topic
Microbial Fuel Cells and Bioremediation
Type
article
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article

Engineering Biotic–Abiotic Interfaces of Semi-artificial Photosynthetic Systems for Solar-Driven CO2 Conversion

Mengmeng Zhen, Wenwen Kong, Honghong Lyu, Lianfei Xu et al.
ACS Applied Materials & Interfaces
Microbial Fuel Cells and Bioremediation
article

Engineering Biotic–Abiotic Interfaces of Semi-artificial Photosynthetic Systems for Solar-Driven CO2 Conversion

Mengmeng Zhen, Wenwen Kong, Honghong Lyu, Lianfei Xu, Boxiong Shen, Ke An, Meng Zhang, Zhong Zhao
article en

Abstract

Semi-artificial photosynthetic systems (SAPSs) integrate the superior light-responsive capabilities of semiconductors with the high selectivity of microbial biocatalysts, offering a pathway for CO2 mitigation and sustainable energy conversion. The performance of SAPSs is primarily constrained by limited CO2 enrichment, inefficient electron transfer, and the low added value of products. To address these challenges, material engineering strategies, including dimension regulation, surface functionalization, and band gap engineering, are employed to enhance CO2 enrichment, charge separation, and electron transfer. Meanwhile, microbial engineering further improves product selectivity through heterologous expression and enzyme engineering, enabling the biosynthesis of value-added chemicals. At the system level, interfacial coupling and electron-transfer mechanisms are systematically analyzed to elucidate electron transport pathways and guide interface optimization. Furthermore, a multidimensional performance evaluation framework is established to systematically compare representative SAPS combinations, C1-Cn product distribution, and solar-to-chemical conversion efficiency, which provides quantitative insights. The environmental influences of light, temperature, and others on biohybrid stability, and carbon-fixation performance are also critically discussed. Finally, future optimization perspectives at molecular level are presented from microbial carbon fixation to the engineering large-scale upgrading of SAPSs.

ACS Applied Materials & Interfaces
Hebei University of Technology (CN)
Openalex Percentile: Top 19%
Microbial Fuel Cells and Bioremediation
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Engineering Biotic–Abiotic Interfaces of Semi-artificial Photosynthetic Systems for Solar-Driven CO2 Conversion — Mengmeng Zhen, Wenwen Kong, et al. · ACS Applied Materials & Interfaces (2026) | TGRS Research Map | TGRS