11. September 2026

New publication in ACS Catalysis from AK Kornienko in collaboration with "Istituto Italiano di Tecnologia" New publication in ACS Catalysis from AK Kornienko in collaboration with "Istituto Italiano di Tecnologia"

"Operando-Induced Surface Reconstruction of NiSe2 for Efficient Glycerol Electrooxidation toward Enhanced Hydrogen Production"

Hana Le - Pub in ACS Catalysis
Hana Le - Pub in ACS Catalysis © ACS
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Abstract

Glycerol electrooxidation (GEOR) is a compelling alternative to the oxygen evolution reaction (OER) in water electrolysis, lowering energy demand while simultaneously producing valuable chemicals. However, efficient and selective catalysts for GEOR remain limited, and a significant gap exists between laboratory research and industrial application. In this study, Ni-based chalcogenides and pnictogenides (NiXy, X = O, S, P, Se) were synthesized to investigate the role of heteroatoms in active-site formation and GEOR selectivity. Among the materials studied, NiSe2 exhibited the best GEOR activity, delivering 100 mA cm–2 at 1.45 VRHE while achieving ≈100% Faradaic efficiency (FEGEOR), with 95% selectivity toward formate. In situ spectroscopy, diffraction analysis, and first-principles calculations reveal that this improved performance originates from rapid γ-NiOOH formation and optimized glycerol adsorption energy. This work reports a dry-cathode zero-gap GEOR-HER electrolyzer successfully operating under industrially relevant conditions (i.e., 400 mA cm–2 at 60 °C), achieving nearly unity FEGEOR at 1.7 V with complete suppression of OER, highlighting GEOR-HER potential to enhance both energy efficiency and economic viability of electrolytic hydrogen production.

Thi-Hong-Hanh Le, Michele Ferri, Stefano Americo, Gabriele Saleh, Sebastiano Bellani, Francesco De Boni, Andrea Griesi, Volker Bendisch, Hossein Bemana, Shuai Yan, Shuai Chen, Hariprasad Ranganathan, Daiki Kido, Giorgio Divitini, Andrea Riva, Nikolay Kornienko, Liberato Manna

ACS Catalysis - online - Sep 2026

Thi-Hong-Hanh Le is a former PhD student, who carried out six months of research at the AK Kornienko in 2025.

Learn more about the Team.

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