Green H2 Generation from Seawater Deploying a Bifunctional Hetero‐Interfaced CoS2‐CoFe‐Layered Double Hydroxide in an Electrolyzer

Author:

Afshan Gul1ORCID,Karim Suhana1ORCID,Kharwar Yashwant Pratap1ORCID,Aziz Tarik1ORCID,Saha Sukanta1,Roy Soumyabrata23ORCID,Dutta Arnab145ORCID

Affiliation:

1. Chemistry Department Indian Institute of Technology Bombay Mumbai Maharashtra 400076 India

2. Department of Materials Science and Nano Engineering Rice University Houston TX 77005 USA

3. Department of Sustainable Energy Engineering Indian Institute of Technology Kanpur Kanpur Uttar Pradesh 208016 India

4. Interdisciplinary Program Climate Studies Indian Institute of Technology Bombay Mumbai Maharashtra 400076 India

5. National Centre of Excellence in Carbon Capture and Utilization Mumbai Maharashtra 400076 India

Abstract

AbstractThis work illustrates the practicality and economic benefits of employing a hetero‐interfaced electrocatalyst (CoS2@CoFe‐LDH), containing cobalt sulphide and iron‐cobalt double‐layer hydroxide for large‐scale hydrogen generation. Here, the rational synthesis and detailed characterization of the CoS2@CoFe‐LDH material to unravel its unique heterostructure are essayed. The CoS2@CoFe‐LDH operates as a bifunctional electrocatalyst to trigger both the hydrogen evolution reaction (HER) and the oxygen evolution reaction (OER) in alkaline seawater (pH 14.0) while showcasing low overpotential requirement for HER (311 mV) and OER (450 mV) at 100 mA cm2 current density. The identical CoS2@CoFe‐LDH on either electrode in an H‐cell setup results in simultaneous H2 and O2 production from seawater with a ≈98% Faradaic efficiency with an applied potential of 1.96V@100 mA cm2. Next, this CoS2@CoFe‐LDH catalyst is deployed on both sides of a membrane electrode assembly in a one‐stack electrolyzer, which retains the intrinsic bifunctional reactivity of the catalyst to generate H2 and O2 in tandem from alkaline seawater with an impeccable energy efficiency (50 kWh kg−1‐of‐H2). This electrolyzer assembly can be directly linked with a Si‐solar cell to produce truly green hydrogen with a solar‐to‐hydrogen generation efficiency of 15.88%, highlighting the potential of this converting seawater to hydrogen under solar irradiation.

Funder

Indian Institute of Technology Bombay

Department of Science and Technology, Government of Rajasthan

Publisher

Wiley

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