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October 17, 2025Molecules3 citationsOpen Access

Rational Design of Cu@Pd Core–Shell Nanostructures via Galvanic Replacement for Dual Electrochemical Applications: Hydrogen Evolution and Nitrate Reduction Reactions

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BNBommireddy NaveenSLSang‐Wha Lee

Key Points

  • The Cu@Pd core-shell nanostructures show exceptional hydrogen evolution reaction activity with a low Tafel slope.
  • Under optimal conditions, the catalyst achieves 60% nitrate removal with high ammonia selectivity, demonstrating its effectiveness.
  • Galvanic Pd modification significantly enhances the bifunctionality of the electrocatalyst for both hydrogen evolution and nitrate reduction.
  • The synergistic Cu–Pd interface facilitates efficient adsorption and selective hydrogenation, enabling better performance.

Abstract

Developing bifunctional electrocatalysts that simultaneously enable green hydrogen production and water purification is essential for advancing sustainable energy and environmental technologies. In this study, we present Cu@Pd core–shell nanostructures fabricated through template-assisted electrodeposition of Cu, followed by galvanic Pd modification on pyrolytic graphite electrodes (PGEs). The optimised catalyst exhibited superior hydrogen evolution reaction (HER) activity, with an onset potential of 70 mV, a low Tafel slope of 33 mV dec−1 and excellent stability during prolonged HER operation. In addition to hydrogen evolution, Cu@Pd/PGE shows significantly enhanced nitrate reduction reaction (NRR) activity compared to Cu/PGE in both alkaline and neutral conditions. Under ideal conditions, the catalyst achieved 60% nitrate removal with high selectivity towards ammonia and minimal nitrite formation, emphasising its superior performance. This enhanced bifunctionality arises from the synergistic Cu–Pd interface, facilitating efficient nitrate adsorption and selective hydrogenation. Despite their high catalytic activity for both HER and NRR, the Cu@Pd nanostructures could often emerge as a versatile platform for integration into sustainable hydrogen production and an effective denitrification process.

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Cite This Study

Naveen et al. (2025) studied this question.

synapsesocial.com/papers/68f199c5de32064e504dceadhttps://doi.org/10.3390/molecules30204062
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