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Strain-Driven Symmetry Breaking and Enhanced SHG in Centrosymmetric 1T-PtS2
Xian Zhang1,2, Xing Xie1,2, Shaofei Li1
1Institute of Quantum Physics, School of Physics, Central South University, 932 South Lushan Road, Changsha, Hunan 410083, People's Republic of China.
Abstract:
Second-harmonic generation (SHG) in two-dimensional (2D) materials typically requires broken inversion symmetry, posing a fundamental constraint for nonlinear optical applications. Surprisingly, the SHG phenomenon was recently observed in centrosymmetric 1T-phase transition metal disulfide compounds (1T-TMDs), but its underlying mechanism and tunability remain elusive. Here, taking the centrosymmetric 1T-PtS2 as an example, we investigate the SHG responses and origin, finding a surprising giant SHG response, exhibiting intensities up to 15 times greater than noncentrosymmetric monolayer WS2 under the same excitation conditions. This is attributed to the sensitive response of SHG in 1T-PtS2 to tiny strain introduced by mechanical exfoliation, which is confirmed by the anisotropic six-petal polarization pattern. By engineering a controlled strain environment using patterned Au pillars and Si hole arrays, we enhanced the SHG signal by a factor of 3, further indicating exceptional strain sensitivity of the 1T phase. Theoretical calculations reveal that strain disrupts lattice symmetry and disturbs uniform charge distribution of 1T-PtS2, which induces the SHG. Our results provide new insights into central symmetry structure-induced second harmonics and establish a foundation for developing the next generation of open functional SHG devices.
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