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Core–Shell Prussian Blue Analogs with Compositional Heterogeneity and Open Cages for Oxygen Evolution Reaction

Here, a reduction‐cation exchange (RCE) strategy is proposed for synthesizing Fe–Co based bimetallic Prussian blue analogs (PBAs) with heterogeneous composition distribution and open cage nanocage architecture. Specially, bivalent cobalt is introduced into a potassium ferricyanide solution containin...

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Autores principales: Zhang, Wuxiang, Song, Hao, Cheng, Yan, Liu, Chao, Wang, Chaohai, Khan, Muhammad Abdul Nasir, Zhang, Hao, Liu, Jizi, Yu, Chengzhong, Wang, Lianjun, Li, Jiansheng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6446613/
https://www.ncbi.nlm.nih.gov/pubmed/30989025
http://dx.doi.org/10.1002/advs.201801901
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author Zhang, Wuxiang
Song, Hao
Cheng, Yan
Liu, Chao
Wang, Chaohai
Khan, Muhammad Abdul Nasir
Zhang, Hao
Liu, Jizi
Yu, Chengzhong
Wang, Lianjun
Li, Jiansheng
author_facet Zhang, Wuxiang
Song, Hao
Cheng, Yan
Liu, Chao
Wang, Chaohai
Khan, Muhammad Abdul Nasir
Zhang, Hao
Liu, Jizi
Yu, Chengzhong
Wang, Lianjun
Li, Jiansheng
author_sort Zhang, Wuxiang
collection PubMed
description Here, a reduction‐cation exchange (RCE) strategy is proposed for synthesizing Fe–Co based bimetallic Prussian blue analogs (PBAs) with heterogeneous composition distribution and open cage nanocage architecture. Specially, bivalent cobalt is introduced into a potassium ferricyanide solution containing hydrochloric acid and polyvinyl pyrrolidone. The uniform PBAs with opened cages are formed tardily after hydrothermal reaction. Time‐dependent evolution characterization on composition elucidating the RCE mechanism is based on the sequential reduction of ferric iron and cation exchange reaction between divalent iron and cobalt. The PBA structures are confirmed by electron tomography technology, and the heterogeneous element distribution is verified by energy‐dispersive X‐ray spectroscopy elemental analysis, leading to the formation of core–shell PBAs with compositional heterogeneity (Fe rich shell and Co rich core) and open cage architecture. When the PBA catalysts are used to boost the oxygen evolution reaction (OER), superior OER activity and long‐term stability (low overpotential of 271 mV at 10 mA cm(−2) and ≈5.3% potential increase for 24 h) are achieved, which is attributed to the unique compositional and structural properties as well as high special surface areas (576.2 m(2) g(−1)). The strategies offer insights for developing PBAs with compositional and structural multiplicity, which encourages more practical catalytic applications.
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spelling pubmed-64466132019-04-15 Core–Shell Prussian Blue Analogs with Compositional Heterogeneity and Open Cages for Oxygen Evolution Reaction Zhang, Wuxiang Song, Hao Cheng, Yan Liu, Chao Wang, Chaohai Khan, Muhammad Abdul Nasir Zhang, Hao Liu, Jizi Yu, Chengzhong Wang, Lianjun Li, Jiansheng Adv Sci (Weinh) Full Papers Here, a reduction‐cation exchange (RCE) strategy is proposed for synthesizing Fe–Co based bimetallic Prussian blue analogs (PBAs) with heterogeneous composition distribution and open cage nanocage architecture. Specially, bivalent cobalt is introduced into a potassium ferricyanide solution containing hydrochloric acid and polyvinyl pyrrolidone. The uniform PBAs with opened cages are formed tardily after hydrothermal reaction. Time‐dependent evolution characterization on composition elucidating the RCE mechanism is based on the sequential reduction of ferric iron and cation exchange reaction between divalent iron and cobalt. The PBA structures are confirmed by electron tomography technology, and the heterogeneous element distribution is verified by energy‐dispersive X‐ray spectroscopy elemental analysis, leading to the formation of core–shell PBAs with compositional heterogeneity (Fe rich shell and Co rich core) and open cage architecture. When the PBA catalysts are used to boost the oxygen evolution reaction (OER), superior OER activity and long‐term stability (low overpotential of 271 mV at 10 mA cm(−2) and ≈5.3% potential increase for 24 h) are achieved, which is attributed to the unique compositional and structural properties as well as high special surface areas (576.2 m(2) g(−1)). The strategies offer insights for developing PBAs with compositional and structural multiplicity, which encourages more practical catalytic applications. John Wiley and Sons Inc. 2019-02-08 /pmc/articles/PMC6446613/ /pubmed/30989025 http://dx.doi.org/10.1002/advs.201801901 Text en © 2019 The Authors. Published by WILEY‐VCH Verlag GmbH & Co. KGaA, Weinheim This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Full Papers
Zhang, Wuxiang
Song, Hao
Cheng, Yan
Liu, Chao
Wang, Chaohai
Khan, Muhammad Abdul Nasir
Zhang, Hao
Liu, Jizi
Yu, Chengzhong
Wang, Lianjun
Li, Jiansheng
Core–Shell Prussian Blue Analogs with Compositional Heterogeneity and Open Cages for Oxygen Evolution Reaction
title Core–Shell Prussian Blue Analogs with Compositional Heterogeneity and Open Cages for Oxygen Evolution Reaction
title_full Core–Shell Prussian Blue Analogs with Compositional Heterogeneity and Open Cages for Oxygen Evolution Reaction
title_fullStr Core–Shell Prussian Blue Analogs with Compositional Heterogeneity and Open Cages for Oxygen Evolution Reaction
title_full_unstemmed Core–Shell Prussian Blue Analogs with Compositional Heterogeneity and Open Cages for Oxygen Evolution Reaction
title_short Core–Shell Prussian Blue Analogs with Compositional Heterogeneity and Open Cages for Oxygen Evolution Reaction
title_sort core–shell prussian blue analogs with compositional heterogeneity and open cages for oxygen evolution reaction
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6446613/
https://www.ncbi.nlm.nih.gov/pubmed/30989025
http://dx.doi.org/10.1002/advs.201801901
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