Electrosorption at metal surfaces from first principles

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作者
Nicolas G. Hörmann
Nicola Marzari
Karsten Reuter
机构
[1] Technische Universität München,Chair of Theoretical Chemistry and Catalysis Research Center
[2] École Polytechnique Fédérale de Lausanne,Theory and Simulation of Materials (THEOS), and National Centre for Computational Design and Discovery of Novel Materials (MARVEL)
[3] Fritz-Haber-Institut der Max-Planck-Gesellschaft,undefined
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npj Computational Materials | / 6卷
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摘要
Electrosorption of solvated species at metal electrodes is a most fundamental class of processes in interfacial electrochemistry. Here, we use its sensitive dependence on the electric double layer to assess the performance of ab initio thermodynamics approaches increasingly used for the first-principles description of electrocatalysis. We show analytically that computational hydrogen electrode calculations at zero net-charge can be understood as a first-order approximation to a fully grand canonical approach. Notably, higher-order terms in the applied potential caused by the charging of the double layer include contributions from adsorbate-induced changes in the work function and in the interfacial capacitance. These contributions are essential to yield prominent electrochemical phenomena such as non-Nernstian shifts of electrosorption peaks and non-integer electrosorption valencies. We illustrate this by calculating peak shifts for H on Pt electrodes and electrosorption valencies of halide ions on Ag electrodes, obtaining qualitative agreement with experimental data already when considering only second order terms. The results demonstrate the agreement between classical electrochemistry concepts and a first-principles fully grand canonical description of electrified interfaces and shed new light on the widespread computational hydrogen electrode approach.
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  • [91] Kolb DM(1996)Comment on trends in the exchange current for hydrogen evolution [J. Electrochem. Soc., 152, J23 (2005)] Phys. Rev. Lett. 77 214110-undefined
  • [92] Jacob T(2018)Atomic-scale simulation of electrochemical processes at electrode/water interfaces under referenced bias potential npj Comput. Mater. 4 245101-undefined
  • [93] Mamatkulov M(1999)QUANTUM ESPRESSO: a modular and open-source software project for quantum simulations of materials Phys. Rev. Lett. 82 undefined-undefined
  • [94] Filhol J-S(2013)Generalized gradient approximation made simple J. Chem. Phys. 139 undefined-undefined
  • [95] Filhol J-S(2014)Precision and efficiency in solid-state pseudopotential calculations Phys. Rev. B 90 undefined-undefined
  • [96] Doublet M-L(undefined)Thermal contraction and disordering of the Al(110) surface undefined undefined undefined-undefined
  • [97] Steinmann SN(undefined)Self-consistent continuum solvation (SCCS): the case of charged systems undefined undefined undefined-undefined
  • [98] Michel C(undefined)Electrostatics of solvated systems in periodic boundary conditions undefined undefined undefined-undefined
  • [99] Schwiedernoch R(undefined)undefined undefined undefined undefined-undefined
  • [100] Sautet P(undefined)undefined undefined undefined undefined-undefined