TY - JOUR
T1 - Theoretical calculation of GaGeTe and its application for ultrafast photonics
AU - Pang, Lihui
AU - Zhao, Meng
AU - Jiang, Le
AU - Zhao, Qiyi
AU - Li, Lu
AU - Wu, Rongqian
AU - Lv, Yi
AU - Liu, Wenjun
N1 - Publisher Copyright:
© 2026 The Authors. Published by Elsevier B.V. on behalf of The Chinese Ceramic Society. This is an open access article under the CC BY-NC-ND license. http://creativecommons.org/licenses/by-nc-nd/4.0/
PY - 2026/7
Y1 - 2026/7
N2 - GaGeTe represents a characteristic example of topological semimetals, exhibiting exceptional mechanical, physical, and chemical characteristics. The material's reduced structural symmetry renders it highly responsive to external parameters, thereby providing considerable flexibility for property modulation and the development of functional nanodevices. In the present study, first-principles theoretical calculations were conducted to investigate the mechanical, electronic, and optical characteristics of GaGeTe, providing fundamental insights into its intrinsic properties while supporting potential optoelectronic applications. Furthermore, GaGeTe-based saturable absorbers were prepared and incorporated into Er-doped fiber laser cavities, resulting in the achievement of Q-switched and harmonic mode-locked operations. For the Q-switched operation, the minimum pulse duration reached 532.15 ns with signal-to-noise ratio of 80 dB. The GaGeTe-based fundamental mode-locked fiber laser shows decent output performance (pulse width, signal-noise ratio and repetition rate are 463.37 fs, 63.2 dB, and 45.99 MHz). Additionally, it enables stable harmonic mode-locking with maximum repetition rate of 367.99 MHz. The observed performance of GaGeTe-based fiber lasers surpasses that reported in previous studies. These results indicate that GaGeTe materials hold significant promise for nonlinear optical applications and expand the available options for two-dimensional material development.
AB - GaGeTe represents a characteristic example of topological semimetals, exhibiting exceptional mechanical, physical, and chemical characteristics. The material's reduced structural symmetry renders it highly responsive to external parameters, thereby providing considerable flexibility for property modulation and the development of functional nanodevices. In the present study, first-principles theoretical calculations were conducted to investigate the mechanical, electronic, and optical characteristics of GaGeTe, providing fundamental insights into its intrinsic properties while supporting potential optoelectronic applications. Furthermore, GaGeTe-based saturable absorbers were prepared and incorporated into Er-doped fiber laser cavities, resulting in the achievement of Q-switched and harmonic mode-locked operations. For the Q-switched operation, the minimum pulse duration reached 532.15 ns with signal-to-noise ratio of 80 dB. The GaGeTe-based fundamental mode-locked fiber laser shows decent output performance (pulse width, signal-noise ratio and repetition rate are 463.37 fs, 63.2 dB, and 45.99 MHz). Additionally, it enables stable harmonic mode-locking with maximum repetition rate of 367.99 MHz. The observed performance of GaGeTe-based fiber lasers surpasses that reported in previous studies. These results indicate that GaGeTe materials hold significant promise for nonlinear optical applications and expand the available options for two-dimensional material development.
KW - Fiber lasers
KW - Saturable absorbers
KW - Two-dimensional materials
KW - Ultrafast photonics
UR - https://www.scopus.com/pages/publications/105040615246
U2 - 10.1016/j.jmat.2026.101219
DO - 10.1016/j.jmat.2026.101219
M3 - 文章
AN - SCOPUS:105040615246
SN - 2352-8478
VL - 12
JO - Journal of Materiomics
JF - Journal of Materiomics
IS - 4
M1 - 101219
ER -