Literature DB >> 29537825

Innovative Strategies for Electrocatalytic Water Splitting.

Bo You1, Yujie Sun1.   

Abstract

Electrocatalytic water splitting driven by renewable energy input to produce clean H2 has been widely viewed as a promising strategy of the future energy portfolio. Currently, the state-of-the-art electrocatalysts for water splitting in acidic solutions are IrO2 or RuO2 for the O2 evolution reaction (OER) and Pt for the H2 evolution reaction (HER). Realization of large-scale H2 production from water splitting requires competent nonprecious electrocatalysts. Despite the advances of decades in this field, several challenges still exist and need to be overcome: (1) Most efforts in the design of nonprecious electrocatalysts have focused on developing HER catalysts for acidic conditions but OER catalysts for alkaline conditions owing to their thermodynamic convenience, potentially resulting in incompatible integration of the two types of catalysts and thus inferior overall performance. (2) In conventional water electrolysis, HER and OER are strictly coupled and therefore H2 and O2 are produced simultaneously, which may lead to explosive H2/O2 mixing due to gas crossover. Meanwhile, the coexistence of H2, O2, and electrocatalysts could produce reactive oxygen species that might shorten the lifetime of an electrolyzer. (3) The HER rate is often limited by that of OER due to the more sluggish kinetics of the latter, which lowers the overall energy conversion efficiency. Moreover, the product of OER, O2, is not highly valuable. (4) It remains challenging to develop efficient and low-cost H2 storage and transport systems for the future H2 economy. In this Account, we describe recent progress in innovative strategies to address the aforementioned four challenges in conventional water electrolysis. These novel strategies include (1) overall water electrolysis based on bifunctional nonprecious electrocatalysts (or precursors) to drive both HER and OER under the same conditions, (2) decoupled water electrolysis achieved by redox mediators for temporally and spatially separating HER from OER, (3) hybrid water electrolysis by integrating thermodynamically more favorable organic upgrading reactions to replace OER, and (4) tandem water electrolysis by utilizing biocatalysts for converting the in situ produced H2 with foreign compounds (e.g., CO2 and N2) to more valuable products. Finally, the remaining challenges and future perspectives are also presented. We hope this Account will function as a momentum call for more endeavors into the development of advanced electrocatalytic systems and novel strategies for practicable H2 production from water as well as the electrocatalytic upgrading of diverse organic compounds.

Entities:  

Year:  2018        PMID: 29537825     DOI: 10.1021/acs.accounts.8b00002

Source DB:  PubMed          Journal:  Acc Chem Res        ISSN: 0001-4842            Impact factor:   22.384


  37 in total

1.  Borophene-supported single transition metal atoms as potential oxygen evolution/reduction electrocatalysts: a density functional theory study.

Authors:  Xuewen Xu; Ruihao Si; Yao Dong; Lanlan Li; Minghui Zhang; Xiaoyi Wu; Jun Zhang; Kun Fu; Yue Guo; Yanyan He
Journal:  J Mol Model       Date:  2021-02-03       Impact factor: 1.810

2.  Liquid-Metal-Mediated Electrocatalyst Support Engineering toward Enhanced Water Oxidation Reaction.

Authors:  Guyue Bo; Peng Li; Yameng Fan; Qiang Zhu; Linlin Xia; Yi Du; Shi Xue Dou; Xun Xu
Journal:  Nanomaterials (Basel)       Date:  2022-06-23       Impact factor: 5.719

3.  Benzophenone assisted UV-activated synthesis of unique Pd-nanodendrite embedded reduced graphene oxide nanocomposite: a catalyst for C-C coupling reaction and fuel cell.

Authors:  Teresa Aditya; Jayasmita Jana; Sonali Panda; Anjali Pal; Tarasankar Pal
Journal:  RSC Adv       Date:  2019-07-09       Impact factor: 4.036

4.  Stable Tetrasubstituted Quinone Redox Reservoir for Enhancing Decoupled Hydrogen and Oxygen Evolution.

Authors:  Fei Wang; Hongyuan Sheng; Wenjie Li; James B Gerken; Song Jin; Shannon S Stahl
Journal:  ACS Energy Lett       Date:  2021-03-26       Impact factor: 23.101

5.  Non-redox doping boosts oxygen evolution electrocatalysis on hematite.

Authors:  Huu Chuong Nguyën; Felipe Andrés Garcés-Pineda; Mabel de Fez-Febré; José Ramón Galán-Mascarós; Núria López
Journal:  Chem Sci       Date:  2020-01-30       Impact factor: 9.825

Review 6.  Atomically Dispersed Reactive Centers for Electrocatalytic CO2 Reduction and Water Splitting.

Authors:  Huabin Zhang; Weiren Cheng; Deyan Luan; Xiong Wen David Lou
Journal:  Angew Chem Int Ed Engl       Date:  2021-02-24       Impact factor: 15.336

7.  Two-dimension on two-dimension growth: hierarchical Ni0.2Mo0.8N/Fe-doped Ni3N nanosheet array for overall water splitting.

Authors:  Chen Liu; Han Zhu; Shuanglong Lu; Fangping Xu; Fang Duan; Mingliang Du
Journal:  RSC Adv       Date:  2021-06-01       Impact factor: 4.036

Review 8.  Electrodeposition of (hydro)oxides for an oxygen evolution electrode.

Authors:  Zhenhua Yan; Huanhuan Liu; Zhimeng Hao; Meng Yu; Xiang Chen; Jun Chen
Journal:  Chem Sci       Date:  2020-04-20       Impact factor: 9.825

9.  A membrane-free flow electrolyzer operating at high current density using earth-abundant catalysts for water splitting.

Authors:  Xiaoyu Yan; Jasper Biemolt; Kai Zhao; Yang Zhao; Xiaojuan Cao; Ying Yang; Xiaoyu Wu; Gadi Rothenberg; Ning Yan
Journal:  Nat Commun       Date:  2021-07-06       Impact factor: 14.919

10.  Energy-saving hydrogen production by chlorine-free hybrid seawater splitting coupling hydrazine degradation.

Authors:  Fu Sun; Jingshan Qin; Zhiyu Wang; Mengzhou Yu; Xianhong Wu; Xiaoming Sun; Jieshan Qiu
Journal:  Nat Commun       Date:  2021-07-07       Impact factor: 14.919

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