Electrochemical germane (GeH4) synthesis via dual-descriptor screening and integrated theoretical-experimental validation

Abstract

Electrochemical synthesis of germane (GeH4) from GeO2 represents a safe and sustainable alternative to conventional thermal methods that suffer from high production costs and excessive byproducts. However, the eight proton-electron transfer steps involve multiple intermediates and competing side reactions, rendering the reaction mechanism highly complex. Herein, a comprehensive reaction network encompassing dissociative and associative mechanisms (D-T, D-H, A-T, and A-H) was systematically established and analysed. Descriptor screening based on density functional theory (DFT) identified *Ge and *GeH adsorption free energies, Gad(Ge) and Gad(GeH), as robust dual descriptors through strong linear scaling relationships with key intermediates. Thermodynamic mapping revealed that non-hydrolysis associative pathways, particularly the A-T mechanism, are most favorable within a moderate adsorption window. Copper (Cu) emerged as the optimal catalyst, balancing hydrogen activation and Ge–H bond formation with a low theoretical limiting potential (0.71 V). Experimental validation confirmed that Cu exhibits superior activity and selectivity compared to Bi and Ni, consistent with descriptor-based predictions. Kinetic analysis on the Cu(111) surface further determined *Ge → *GeH hydrogenation as the rate-determining step in the less favorable pathway, with a free-energy barrier of 0.95 eV, directly linking the dual descriptors to kinetic constraints. This integrated framework provides mechanistic insights and descriptor-driven guidance for the rational design of selective GeH4 electrocatalysts, and establishing a generalizable paradigm for the sustainable electrochemical synthesis of electronic specialty gases.

Graphical abstract: Electrochemical germane (GeH4) synthesis via dual-descriptor screening and integrated theoretical-experimental validation

Supplementary files

Article information

Article type
Paper
Submitted
17 Dec 2025
Accepted
24 Jan 2026
First published
03 Feb 2026

J. Mater. Chem. A, 2026, Advance Article

Electrochemical germane (GeH4) synthesis via dual-descriptor screening and integrated theoretical-experimental validation

J. Zheng, J. Si, A. Feng, H. Liu, S. Zhang and J. Wang, J. Mater. Chem. A, 2026, Advance Article , DOI: 10.1039/D5TA10287A

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