TY - JOUR
T1 - Lattice compression in arrayed CoMoO4
T2 - A synergistic coordination strategy with graphdiyne and PMo12 for enhanced AEM water electrolysis
AU - Shang, Wenhui
AU - Sun, Hao
AU - Yang, Lin
AU - Chen, Bingbing
AU - Li, Kai
AU - Gao, Juan
AU - Wang, Nan
AU - Xing, Zihao
AU - Jia, Zhiyu
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/11/15
Y1 - 2026/11/15
N2 - Strain engineering and coordination modulation represent effective and precisely tunable strategies for improving water-splitting efficiency. In this study, a substrate-induced synthesis strategy is proposed, in which pyrgraphdiyne nanowalls serve as a template to achieve controllable in situ growth of a three-dimensional CoMoO4 nanoarray with lattice compressive strain. On this base, polyoxometalate clusters bond with exposed cobalt sites, allowing fine-tuning of the axial coordination environment of Co sites. The resulting Co-O-Mo bonds act as efficient electron transport pathways, further optimizing the electronic structure of the metal active centers. Benefiting from this design, the PMo12-CoMoO4/PGDY catalyst with 4.2% lattice compressive strain exhibits excellent bifunctional activity, achieving OER overpotentials of 187 mV at 10 mA cm−2 and 364 mV at 1000 mA cm−2, and HER overpotential of 45 mV at 10 mA cm−2 in 1 M KOH. Notably, in an AEMWE single-cell configuration, this catalyst achieves a high current density of 1000 mA cm−2 at 1.77 V and maintains robust stability for 200 h under practical operating conditions. This work demonstrates a universal substrate-driven design paradigm that synergistically integrates lattice strain engineering with coordination modulation, offering a new route to bifunctional noble-metal-free electrocatalysts. The enhanced performance arises from two synergistic effects: (i) PGDY-induced lattice compression (4.2%) optimizes Co-O bond lengths and the D-band center, reducing the OER free energy barrier; and (ii) axial coordination of PMo12 tunes the electronic structure of Co sites and promotes interfacial charge transfer via Co-O-Mo bonds.
AB - Strain engineering and coordination modulation represent effective and precisely tunable strategies for improving water-splitting efficiency. In this study, a substrate-induced synthesis strategy is proposed, in which pyrgraphdiyne nanowalls serve as a template to achieve controllable in situ growth of a three-dimensional CoMoO4 nanoarray with lattice compressive strain. On this base, polyoxometalate clusters bond with exposed cobalt sites, allowing fine-tuning of the axial coordination environment of Co sites. The resulting Co-O-Mo bonds act as efficient electron transport pathways, further optimizing the electronic structure of the metal active centers. Benefiting from this design, the PMo12-CoMoO4/PGDY catalyst with 4.2% lattice compressive strain exhibits excellent bifunctional activity, achieving OER overpotentials of 187 mV at 10 mA cm−2 and 364 mV at 1000 mA cm−2, and HER overpotential of 45 mV at 10 mA cm−2 in 1 M KOH. Notably, in an AEMWE single-cell configuration, this catalyst achieves a high current density of 1000 mA cm−2 at 1.77 V and maintains robust stability for 200 h under practical operating conditions. This work demonstrates a universal substrate-driven design paradigm that synergistically integrates lattice strain engineering with coordination modulation, offering a new route to bifunctional noble-metal-free electrocatalysts. The enhanced performance arises from two synergistic effects: (i) PGDY-induced lattice compression (4.2%) optimizes Co-O bond lengths and the D-band center, reducing the OER free energy barrier; and (ii) axial coordination of PMo12 tunes the electronic structure of Co sites and promotes interfacial charge transfer via Co-O-Mo bonds.
KW - AEMWE
KW - Coordination modulation
KW - Lattice strain
KW - Polyoxometalate
KW - Pyrgraphdiyne
UR - https://www.scopus.com/pages/publications/105039135669
U2 - 10.1016/j.apcatb.2026.126981
DO - 10.1016/j.apcatb.2026.126981
M3 - Article
AN - SCOPUS:105039135669
SN - 0926-3373
VL - 397
JO - Applied Catalysis B: Environmental
JF - Applied Catalysis B: Environmental
M1 - 126981
ER -