Retraction notice to "Corrigendum to “High performance graphene oxide/NiAl2O4 directly grown on carbon cloth hybrid for oxygen evolution reaction” [Int. J. Hydrogen Energy 47, Issue 81, (22 September 2022), 34299–34311]" [International Journal of Hydrogen Energy 95 (2024) 764-765] [PDF]
Salma Farhana Aman +9 more
openalex +1 more source
Physics‐Grounded Materials Artificial Intelligence for Reliable Materials Discovery
Physics‐Grounded Materials AI (PhysMat AI) integrates physical priors, descriptors, constraints, verification, and data infrastructure into a unified full‐stack framework, enabling reliable, interpretable, and autonomous AI‐driven materials discovery.
Yuhang Wang +3 more
wiley +1 more source
<i>N</i>-alkylated fluorographene: a metal-free electrocatalyst for the hydrogen evolution reaction. [PDF]
Shivani +7 more
europepmc +1 more source
Retraction notice to "High performance graphene oxide/NiAl2O4 directly grown on carbon cloth hybrid for oxygen evolution reaction" [International Journal of Hydrogen Energy 47 (2022) 34299-34311] [PDF]
Salma Farhana Aman +9 more
openalex +1 more source
Advanced ink systems for solution‐processed textile triboelectric nanogenerators are systematically summarized, spanning conductive, tribo‐negative, and tribo‐positive layers. By connecting ink chemistry, deposition methods, and device function, the present review reveals the key governing principles of solution development and highlights practical ...
Xinlong Sun, Stephen Beeby
wiley +1 more source
Strain-Driven Bimetallic-Interface Orbital Hybridization for Hydrogen Evolution Reaction
Rui Xu +5 more
doaj +1 more source
Porous sheet-like carbon nitride with high porosity for efficient visible-light-driven hydrogen evolution reaction. [PDF]
Yang Z, Deng X, Wang J, Li P.
europepmc +1 more source
A Dynamic Surface Metal‐Organic Framework Electrocatalyst: Potential‐Driven Activation of Atomically Defined Au Sites for the Hydrogen Evolution Reaction [PDF]
Paulina Wira +12 more
openalex +1 more source
Self‐Assembled Hybrid Cell‐Enzyme Materials for Gas‐Powered Biocatalysis
Integrating living cells with programmable enzyme networks enables hybrid materials that convert gaseous feedstocks into chemical reducing power. These gas‐powered catalytic beads operate as modular, recyclable platforms for adaptive biocatalysis and sustainable synthesis.
Marius Stoeckle +2 more
wiley +1 more source
Earth-abundant CoMnFeSi Heusler alloy as a promising catalyst for the hydrogen evolution reaction. [PDF]
Aladerah B, Alkhazaleh M, Obeidat A.
europepmc +1 more source

