论文
精度在第19位得到验证的镥离子光频基准
Lu+ optical frequency references with accuracy verified at the 19th digit
作者:K J Arnold, M D K Lee, Qi Zhao, Qichen Qin, Zhao Zhang, N Jayjong, M D Barrett
Nature · 2026年9月23日 · Arnold 等 7 位作者
不需要生物学背景,多打比方
正在获取全文并生成讲解(拿不到全文就依据摘要)…
已等待 0 秒大约需要 10–20 秒
可以先看别的,做好了会自动出现在这里。
这篇还没有动画
动画会把研究的流程、作用机制和关键结果一步一步演示出来,每一步都标明出自原文哪里。制作大约需要一两分钟。
摘要Abstract
Optical atomic frequency references1 have far surpassed their microwave frequency predecessors, leading to an anticipated redefinition of the SI (International System of Units) second2. However, as the scientific community seeks consensus on a new standard, and several state-of-the-art optical standards now report evaluated fractional uncertainties below 10^-18, verification by same-species comparisons to comparable levels remains an outstanding challenge. Here we report two 176Lu+ single-ion optical frequency references, each with evaluated fractional frequency uncertainty near 1 × 10^-19, which are directly compared by correlation spectroscopy and demonstrate agreement, with a measured relative frequency difference of [-0.1 ± (5.7)stat ± (1.0)sys] × 10^-19, where 'stat' and 'sys' indicate the statistical and systematic uncertainty, respectively. Our optical references have been comprehensively assessed with evaluated uncertainties below 10^-18, supported by a same-species comparison of independent systems to the 5.7 × 10^-19 level. This accuracy, achieved in practical room-temperature systems, will contribute to improving international timekeeping and towards chronometric levelling3,4 at the millimetre scale, as well as tests of fundamental physics5 such as Lorentz invariance6, general relativity7, searches for dark matter8,9 and variation of fundamental constants10,11.
还没有查过关联研究
我会去找这篇研究之前的基础工作、做类似事情的研究,以及之后引用它的研究,并说明每篇为什么相关。