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Updated: Sep 10, 2026

Piezoreflectance Spectroscopy of Optical Transitions in van der Waals Layered Crystals
Published on: May 22, 2026
Coupling lattice distortion with electronic states in highly crystalline LDHs for efficient piezocatalytic conversion
Dingyu Qiu1, Yaning Gong1, Xingchen He1
1College of Chemistry, Chemical Engineering and Materials Science, Collaborative Innovation Center of Suzhou Nano Science and Technology, Soochow University, Suzhou 215123, China.
Abstract:
The restricted conversion of low-concentration CO2 in industrial flue gas and the structural degradation inherent in traditional defect engineering remain key challenges in piezocatalysis. In this work, highly crystalline Co-substituted MgAl-LDH nanosheets were constructed via isomorphous substitution. The atomic-level incorporation breaks the structural centrosymmetry through local lattice distortion. Consequently, it bolsters the piezoelectric built-in electric field to accelerate charge carrier separation. Simultaneously, the Co active sites optimize the interfacial d-band center, strengthen the specific adsorption of CO2, and substantially lower the energy barrier for the rate-determining step (⁎COOH formation). The strong coupling between the polarization-induced electric field and interfacial reaction kinetics lets 5% Co-MgAl-LDH outperform pristine MgAl-LDH by roughly 5.7-fold. At 25 °C under a 10% CO2 atmosphere, 5%Co-MgAl-LDH achieves CO and H2 production rates of 5542.8 and 3266.2 μmol g-1 h-1, respectively, corresponding to a CO/H2 molar ratio of approximately 1.7:1. Together, local lattice distortion and interfacial electronic-state modulation account for this performance within an otherwise highly crystalline framework, pointing to a workable route for catalysts aimed at low-concentration CO2 conversion.
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