Chaotropic Nanoelectrocatalysis: Chemically Disrupting Water Intermolecular Network at the Point‐of‐Catalysis to Boost Green Hydrogen Electrosynthesis

Author:

Ng Li Shiuan1ORCID,Chah Eu Li Chloe1,Ngieng Min Hui1,Boong Siew Kheng1,Chong Carice1,Raja Mogan Tharishinny1,Lee Jinn‐Kye1ORCID,Li Haitao2,Lee Chi‐Lik Ken3,Lee Hiang Kwee145

Affiliation:

1. Division of Chemistry and Biological Chemistry School of Chemistry Chemical Engineering and Biotechnology Nanyang Technological University 21 Nanyang Link 637371 Singapore Singapore

2. School of Chemistry and Chemical Engineering Yangzhou University 225002 Yangzhou P R. China

3. Institute of Sustainability for Chemicals Energy and Environment (ISCE2) The Agency for Science, Technology and Research (A*STAR) Jurong Island 627833 Singapore Singapore

4. Institute of Materials Research and Engineering The Agency for Science, Technology and Research (A*STAR) 2 Fusionopolis Way, #08-03, Innovis 138634 Singapore Singapore

5. Centre for Hydrogen Innovations National University of Singapore E8, 1 Engineering Drive 3 117580 Singapore Singapore

Abstract

AbstractEfficient green hydrogen production through electrocatalytic water splitting serves as a powerful catalyst for realizing a carbon‐free hydrogen economy. However, current electrocatalytic designs face challenges such as poor hydrogen evolution reaction (HER) performance (Tafel slope, 100–140 mV dec−1) because water molecules are thermodynamically trapped within their extensive hydrogen bonding network. Herein, we drive efficient HER by manipulating the local water microenvironment near the electrocatalyst. This is achieved by functionalizing the nanoelectrocatalyst's surface with a monolayer of chaotropic molecules to chemically weaken water‐water interactions directly at the point‐of‐catalysis. Notably, our chaotropic design demonstrates a superior Tafel slope (77 mV dec−1) and the lowest overpotential (0.3 V at 10 mA cm−2ECSA), surpassing its kosmotropic counterparts (which reinforces the water molecular network) and previously reported electrocatalytic designs by up to ≈2‐fold and ≈3‐fold, respectively. Comprehensive mechanistic investigations highlight the critical role of chaotropic surface chemistry in disrupting the water intermolecular network, thereby releasing free/weakly bound water molecules that strongly interact with the electrocatalyst to boost HER. Our study provides a unique molecular approach that can be readily integrated with emerging electrocatalytic materials to rapidly advance the electrosynthesis of green hydrogen, holding immense promise for sustainable chemical and energy applications.

Funder

Ministry of Education - Singapore

Agency for Science, Technology and Research

Nanyang Technological University

Publisher

Wiley

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