TY - JOUR
T1 - A wide-range topological thermometer with Ta2Pd3Te5
T2 - from power-law response to application prospects
AU - Li, Yupeng
AU - Wang, Anqi
AU - Pan, Senyang
AU - Yan, Dayu
AU - Yang, Guang
AU - Guo, Xingchen
AU - Hong, Yu
AU - Zhang, Zhiyuan
AU - Dou, Ziwei
AU - Liu, Guangtong
AU - Qu, Fanming
AU - Wang, Zhijun
AU - Qian, Tian
AU - Zhang, Jinglei
AU - Shi, Youguo
AU - Lu, Li
AU - Shen, Jie
N1 - Publisher Copyright:
© The Author(s) 2026.
PY - 2026/12
Y1 - 2026/12
N2 - In recent decades, there has been a persistent pursuit of applications for surface/edge states in topological systems, driven by their dissipationless transport effects. This work demonstrates the remarkable properties of the topological material Ta2Pd3Te5, as a thermometer. At low temperatures, it shows a power-law correlation in temperature-dependent resistance, while behaving like a semiconductor at high temperatures. This dual behavior effectively mitigates the issue of infinite resistance in semiconductor thermometers at ultra-low temperatures, making it ideal for millikelvin-range refrigerators. Through chemical doping, thickness adjustment, and gate voltage control, its performance can be finely tuned, and can also enable micron-scale local temperature measurement from millikelvin to room temperature. Furthermore, this thermometer exhibits excellent temperature sensitivity and resolution, and can be fine-tuned to show small magnetoresistance. In summary, the Ta2Pd3Te5-based thermometer, also referred to as a topological thermometer, demonstrates considerable potential for broad-temperature-range detection and merits further investigation and optimization.
AB - In recent decades, there has been a persistent pursuit of applications for surface/edge states in topological systems, driven by their dissipationless transport effects. This work demonstrates the remarkable properties of the topological material Ta2Pd3Te5, as a thermometer. At low temperatures, it shows a power-law correlation in temperature-dependent resistance, while behaving like a semiconductor at high temperatures. This dual behavior effectively mitigates the issue of infinite resistance in semiconductor thermometers at ultra-low temperatures, making it ideal for millikelvin-range refrigerators. Through chemical doping, thickness adjustment, and gate voltage control, its performance can be finely tuned, and can also enable micron-scale local temperature measurement from millikelvin to room temperature. Furthermore, this thermometer exhibits excellent temperature sensitivity and resolution, and can be fine-tuned to show small magnetoresistance. In summary, the Ta2Pd3Te5-based thermometer, also referred to as a topological thermometer, demonstrates considerable potential for broad-temperature-range detection and merits further investigation and optimization.
UR - https://www.scopus.com/pages/publications/105035353123
U2 - 10.1038/s41535-026-00866-8
DO - 10.1038/s41535-026-00866-8
M3 - 文章
AN - SCOPUS:105035353123
SN - 2397-4648
VL - 11
JO - npj Quantum Materials
JF - npj Quantum Materials
IS - 1
M1 - 33
ER -