Biomimetic polymeric semiconductor based hybrid nanosystems for artificial photosynthesis towards solar fuels generation via CO2 reduction

© 2016 Elsevier Ltd. In photosynthesis, an intricate polymeric system is constructed by connecting a light-harvesting antenna network, a molecular water oxidation center, and CO2 or proton-reduction machinery in a nanolayered architecture as a basic photosynthetic unit for solar-to-fuels conversion....

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Main Authors: Zhou, H., Li, P., Liu, Jian, Chen, Z., Liu, L., Dontsova, D., Yan, R., Fan, T., Zhang, D., Ye, J.
Format: Journal Article
Published: ELSEVIER 2016
Online Access:http://hdl.handle.net/20.500.11937/73154
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author Zhou, H.
Li, P.
Liu, Jian
Chen, Z.
Liu, L.
Dontsova, D.
Yan, R.
Fan, T.
Zhang, D.
Ye, J.
author_facet Zhou, H.
Li, P.
Liu, Jian
Chen, Z.
Liu, L.
Dontsova, D.
Yan, R.
Fan, T.
Zhang, D.
Ye, J.
author_sort Zhou, H.
building Curtin Institutional Repository
collection Online Access
description © 2016 Elsevier Ltd. In photosynthesis, an intricate polymeric system is constructed by connecting a light-harvesting antenna network, a molecular water oxidation center, and CO2 or proton-reduction machinery in a nanolayered architecture as a basic photosynthetic unit for solar-to-fuels conversion. Herein, we present a prototype basic artificial photosynthetic unit by connecting a typical CO2/proton reduction catalyst, a cocatalyst and an electron mediator as well as CO2 activator into a polymer based nano-architectured system for artificial photosynthesis with water and CO2. Here, g-C3N4 nanosheets, mimicking the nanolayered thylakoids stacks are demonstrated as promising photocatalytic elements with planar configuration and high surface area, which provide an excellent platform for the assembly of other analogous elements. Au NPs are served as a suitable cocatalyst. ZIF-9, as a typical cofactor to illustrate this concept here, is used as a CO2 concentrator and an electron mediator to promote the redox reaction. In artificial photosynthesis, driven by light energy, water and CO2 are served electron donor and carbon source respectively for the generation of H2 and CO. The artificial unit described here as a simple model, provides an important biomimetic step down a path aligned with the low-cost artificial photosynthetic systems manufacturing.
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institution Curtin University Malaysia
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publishDate 2016
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spelling curtin-20.500.11937-731542023-08-02T06:39:12Z Biomimetic polymeric semiconductor based hybrid nanosystems for artificial photosynthesis towards solar fuels generation via CO2 reduction Zhou, H. Li, P. Liu, Jian Chen, Z. Liu, L. Dontsova, D. Yan, R. Fan, T. Zhang, D. Ye, J. © 2016 Elsevier Ltd. In photosynthesis, an intricate polymeric system is constructed by connecting a light-harvesting antenna network, a molecular water oxidation center, and CO2 or proton-reduction machinery in a nanolayered architecture as a basic photosynthetic unit for solar-to-fuels conversion. Herein, we present a prototype basic artificial photosynthetic unit by connecting a typical CO2/proton reduction catalyst, a cocatalyst and an electron mediator as well as CO2 activator into a polymer based nano-architectured system for artificial photosynthesis with water and CO2. Here, g-C3N4 nanosheets, mimicking the nanolayered thylakoids stacks are demonstrated as promising photocatalytic elements with planar configuration and high surface area, which provide an excellent platform for the assembly of other analogous elements. Au NPs are served as a suitable cocatalyst. ZIF-9, as a typical cofactor to illustrate this concept here, is used as a CO2 concentrator and an electron mediator to promote the redox reaction. In artificial photosynthesis, driven by light energy, water and CO2 are served electron donor and carbon source respectively for the generation of H2 and CO. The artificial unit described here as a simple model, provides an important biomimetic step down a path aligned with the low-cost artificial photosynthetic systems manufacturing. 2016 Journal Article http://hdl.handle.net/20.500.11937/73154 10.1016/j.nanoen.2016.04.049 ELSEVIER restricted
spellingShingle Zhou, H.
Li, P.
Liu, Jian
Chen, Z.
Liu, L.
Dontsova, D.
Yan, R.
Fan, T.
Zhang, D.
Ye, J.
Biomimetic polymeric semiconductor based hybrid nanosystems for artificial photosynthesis towards solar fuels generation via CO2 reduction
title Biomimetic polymeric semiconductor based hybrid nanosystems for artificial photosynthesis towards solar fuels generation via CO2 reduction
title_full Biomimetic polymeric semiconductor based hybrid nanosystems for artificial photosynthesis towards solar fuels generation via CO2 reduction
title_fullStr Biomimetic polymeric semiconductor based hybrid nanosystems for artificial photosynthesis towards solar fuels generation via CO2 reduction
title_full_unstemmed Biomimetic polymeric semiconductor based hybrid nanosystems for artificial photosynthesis towards solar fuels generation via CO2 reduction
title_short Biomimetic polymeric semiconductor based hybrid nanosystems for artificial photosynthesis towards solar fuels generation via CO2 reduction
title_sort biomimetic polymeric semiconductor based hybrid nanosystems for artificial photosynthesis towards solar fuels generation via co2 reduction
url http://hdl.handle.net/20.500.11937/73154