Phase Transition Engineering to Break the Symmetry of Diamond-Like Chalcogenide for Second-Order Nonlinear Optics

Abstract

Temperature-induced phase transitions offer a promising route to engineer nonlinear optical materials, particularly for infrared applications where conventional design approaches face fundamental limitations. Herein, a temperature-induced centrosymmetric (CS) to noncentrosymmetric (NCS) irreversible phase transition strategy was employed to successfully prepare a novel NCS diamond-like (DL) chalcogenide, β-Ag4P2S7, which was derived from the CS phase α-Ag4P2S7 transformation. Structural analysis reveals that this transformation involves a reorganization of [Ag2PS₄]²⁻ layers from an AA'AA' to AA'A''AA'A'' stacking pattern, facilitated by bridging [Ag1S₄]⁷⁻ tetrahedra. β-Ag₄P₂S₇ has exceptional IR NLO properties, including a strong phase-matchable second-harmonic generation (SHG) response (1.02 × AgGaS2) and a wide band gap of 2.90 eV (the largest one in the Ag-based DL chalcogenides), which balances excellent NLO response with wide band gap. Further structure-property relationship analyses show that superior NLO properties and band gap broadening of β-Ag4P2S7 mainly originate from the alteration of the [Ag2PS₄]²⁻ layer stacking configuration, which is driven by a temperature-induced irreversible phase transition. This work not only presents a new paradigm for designing high-performance NLO materials through phase transitions, but also significantly advances the potential of temperature-mediated crystal engineering for optical applications.

Supplementary files

Article information

Article type
Research Article
Submitted
21 Apr 2025
Accepted
09 Jun 2025
First published
09 Jun 2025

Inorg. Chem. Front., 2025, Accepted Manuscript

Phase Transition Engineering to Break the Symmetry of Diamond-Like Chalcogenide for Second-Order Nonlinear Optics

C. Tang, A. Yao, W. Xing, W. Jiang, J. Tang, L. Kang, J. Wu, W. Yin and K. Bin, Inorg. Chem. Front., 2025, Accepted Manuscript , DOI: 10.1039/D5QI00969C

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