ISSN: 0256-1115 (print version) ISSN: 1975-7220 (electronic version)
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Conflict of Interest
In relation to this article, we declare that there is no conflict of interest.
Publication history
Received February 7, 2026
Accepted April 16, 2026
Available online August 25, 2026
articles This is an Open-Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/bync/3.0) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
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Surface Modification Effects on Electrochemical Synthesis of NaBH4 for Hydrogen Storage

Advanced Materials R&D Team, Hansol Chemical Co. 1Materials Research & Engineering Center, Hyundai Motor Group 2Department of Chemistry, Sungkyunkwan University
wnstjr3232@naver.com
Korean Journal of Chemical Engineering, August 2026, 43(10), 2801-2815(15)
https://doi.org/10.1007/s11814-026-00729-9

Abstract

Sodium borohydride, owing to its high hydrogen content and chemical stability, is a promising solid hydrogen storage 

material. However, its commercialization is limited by the high cost of conventional thermochemical synthesis. This study 

investigated the feasibility of sodium borohydride synthesis via electrochemical reduction of metaborate, with particular 

emphasis on the role of electrode surface properties in suppressing the hydrogen evolution reaction and enhancing selectivity.

Boron-doped diamond electrodes were employed as both working and counter electrodes, with surface terminations 

controlled electrochemically and characterized by contact angle, X-ray photoelectron spectroscopy, and linear sweep 

voltammetry. Under neutral conditions, the boron-doped diamond electrode used as the counter electrode produced a 

maximum sodium borohydride yield of 1.8%, demonstrating that hydrogen evolution reaction suppression enables selective

metaborate reduction. O-terminated boron-doped diamond electrode surfaces promoted metaborate ion adsorption 

and suppressed the hydrogen evolution reaction, but their surface instability reduced reproducibility. This study provides 

design guidelines for next-generation electrodes, highlighting that electrode engineering is essential for cost-effective 

sodium borohydride electrosynthesis.

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