Yin Jianan, Yan Yang, Miao Mulin, Tang Jiayin, Jiang Jiali, Liu Hui, Chen Yuhan, Chen Yinxian, Lyu Fucong, Mao Zhengyi, He Yunhu, Wan Lei, Zhou Binbin, Lu Jian
CityU-Shenzhen Futian Research Institute, Shenzhen, 518045, China.
Department of Mechanical Engineering, City University of Hong Kong, Hong Kong, China.
Nat Commun. 2024 May 8;15(1):3871. doi: 10.1038/s41467-024-48137-z.
Temperature is one of the seven fundamental physical quantities. The ability to measure temperatures approaching absolute zero has driven numerous advances in low-temperature physics and quantum physics. Currently, millikelvin temperatures and below are measured through the characterization of a certain thermal state of the system as there is no traditional thermometer capable of measuring temperatures at such low levels. In this study, we develop a kind of diamond with sp-sp composite phase to tackle this problem. The synthesized composite phase diamond (CPD) exhibits a negative temperature coefficient, providing an excellent fit across a broad temperature range, and reaching a temperature measurement limit of 1 mK. Additionally, the CPD demonstrates low magnetic field sensitivity and excellent thermal stability, and can be fabricated into probes down to 1 micron in diameter, making it a promising candidate for the manufacture of next-generation cryogenic temperature sensors. This development is significant for the low-temperature physics researches, and can help facilitate the transition of quantum computing, quantum simulation, and other related technologies from research to practical applications.
温度是七个基本物理量之一。测量接近绝对零度的温度的能力推动了低温物理学和量子物理学的众多进展。目前,由于没有传统温度计能够测量如此低水平的温度,毫开尔文及以下的温度是通过表征系统的某种热状态来测量的。在本研究中,我们开发了一种具有sp-sp复合相的金刚石来解决这个问题。合成的复合相金刚石(CPD)表现出负温度系数,在很宽的温度范围内具有出色的拟合度,温度测量极限达到1 mK。此外,CPD表现出低磁场灵敏度和出色的热稳定性,并且可以制成直径小至1微米的探头,使其成为制造下一代低温温度传感器的有前途的候选材料。这一进展对低温物理研究具有重要意义,并有助于推动量子计算、量子模拟及其他相关技术从研究向实际应用的转变。