
物理化学学报 >> 2022, Vol. 38 >> Issue (11): 2207024.doi: 10.3866/PKU.WHXB202207024
所属专题: 新锐科学家专刊
综述 上一篇
陈宇新1, 王丽君1, 姚志波1, 郝磊端1, 谭心怡2,*(
), Masa Justus3, Robertson Alex W.4, 孙振宇1,*
收稿日期:2022-07-12
录用日期:2022-07-29
发布日期:2022-08-03
通讯作者:
谭心怡,孙振宇
E-mail:monica950521@126.com
基金资助:
Yuxin Chen1, Lijun Wang1, Zhibo Yao1, Leiduan Hao1, Xinyi Tan2,*(
), Justus Masa3, Alex W. Robertson4, Zhenyu Sun1,*
Received:2022-07-12
Accepted:2022-07-29
Published:2022-08-03
Contact:
Xinyi Tan,Zhenyu Sun
E-mail:monica950521@126.com
About author:Email: sunzy@mail.buct.edu.cn (Z.S.). Tel.: +86-13301308339 (Z.S.)Supported by:摘要:
电催化二氧化碳还原(ECR) 制备高值化学品被认为是在碳中和背景下实现可再生能源存储及降低CO2浓度的一种有效策略。为了实现此目标,催化剂的开发与设计是ECR研究的关键。单原子催化剂(SACs) 因其独特的电子结构、明确的配位环境和极高的原子利用率,近年来在ECR领域引起了广泛关注。通过调节SACs的中心金属元素种类和局部配位结构,可有效调节SACs对CO2和其还原中间体的吸附强度和催化活性。本文总结了SACs在ECR领域所取得的最新研究进展,重点讨论了SACs的配位结构及其与载体之间的相互作用对催化活性的影响以及相关调控策略,最后,提出了SACs应用于ECR所面临的机遇与挑战。
陈宇新, 王丽君, 姚志波, 郝磊端, 谭心怡, Masa Justus, Robertson Alex W., 孙振宇. 单原子配位结构及与载体相互作用的调控用于二氧化碳电催化还原[J]. 物理化学学报, 2022, 38(11), 2207024. doi: 10.3866/PKU.WHXB202207024
Yuxin Chen, Lijun Wang, Zhibo Yao, Leiduan Hao, Xinyi Tan, Justus Masa, Alex W. Robertson, Zhenyu Sun. Tuning the Coordination Structure of Single Atoms and Their Interaction with the Support for Carbon Dioxide Electroreduction[J]. Acta Phys. -Chim. Sin. 2022, 38(11), 2207024. doi: 10.3866/PKU.WHXB202207024
Table 1
Different ECR reactions with corresponding standard reduction potentials."
| Reduction product | Standard reduction potential (vs. SHE, pH = 7) |
| CO2 + e? → CO2?? | E0 = ?1.90 V |
| CO2 + 2H+ + 2e? → CO + H2O | E0 = ?0.53 V |
| CO2 + 2H+ + 2e? → HCOOH | E0 = ?0.61 V |
| CO2 + 4H+ + 4e? → HCHO + H2O | E0 = ?0.48 V |
| CO2 + 6H+ + 6e? → CH3OH + H2O | E0 = ?0.38 V |
| CO2 + 8H+ + 8e? → CH4 + H2O | E0 = ?0.24 V |
Fig 5
(a) Cu-N-C-800 and (b) Cu-N-C-900 and their ECR catalytic trends. (c) Operando EXAFS spectra of Cu0.5NC under no potential applied (blue line), during electrolysis at ?1.2 V (vs. RHE) (red line), after electrolysis under no potential applied (green line) and after electrolysis at ?1.2 V (vs. RHE) then sample exposed to air for 10 h (orange line). (d) FE and the product distribution at different polarization potentials. (a, b) Adapted with permission from Ref. 125, Copyright 2020 American Chemical Society. (c, d) Adapted with permission from Ref. 126, Copyright 2019 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim."
Fig 6
(a) XPS spectrum of N 1s for NiSA-N2-C. (b) Normalized Ni K-edge XANES spectra and (c) FT-EXAFS spectra of NiSA-Nx-C and Ni foil. (d) EXAFS fitting and optimized model for NiSA-N2-C. (e) Schematic illustration of Co-N5/HNPCSs. (f) Free energy profiles of Co(II)CPY/graphene and Co-porphine/graphene. (g) Bader charge of Co and N atoms. (a–d) Adapted with permission from Ref. 135, Copyright 2020 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim. (e) Adapted with permission from Ref. 138, Copyright 2018 American Chemical Society. (f, g) Adapted with permission from Ref. 139, Copyright 2020 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim."
Fig 7
Calculated free energy of (a) the ECR and (b) hydrogen adsorption. (c) A proposed reaction mechanism of ECR to CH4 over CoPc@Zn-N-C. (a, b) Adapted with permission from Ref. 141, Copyright 2019 Nature Portfolio. (c) Adapted with permission from Ref. 130, Copyright 2020 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim."
Fig 8
(a) FEs of different products for Cu-CeO2 with different Cu concentrations. (b) Structure models of the Vo-bound and single-atom Cu sites on CeO2 for CO2 adsorption and activation. (c) Schematic of the synthesis of 2Bn―Cu@UiO-67. (a, b) Adapted with permission from Ref. 153, Copyright 2018 American Chemical Society. (c) Adapted with permission from Ref. 164, Copyright 2022 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim."
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