Department of Electrical and Computer Engineering, University of California, Los Angeles 90095, United States.
Department of Physics and Living Systems Institute, University of Exeter, Exeter EX4 4QD, U.K.
J Phys Chem Lett. 2021 Oct 28;12(42):10372-10379. doi: 10.1021/acs.jpclett.1c02796. Epub 2021 Oct 20.
The Posner molecule, Ca(PO), has long been recognized to have biochemical relevance in various physiological processes. It has found recent attention for its possible role as a biological quantum information processor, whereby the molecule purportedly maintains long-lived nuclear spin coherences among its P nuclei (presumed to be symmetrically arranged), allowing it to function as a room temperature qubit. The structure of the molecule has been of much dispute in the literature, although the point group symmetry has often been assumed and exploited in calculations. Using a variety of simulation techniques (including molecular dynamics and structural relaxation), rigorous data analysis tools, and by exploring thousands of individual configurations, we establish that the molecule predominantly assumes low-symmetry structures ( and ) at room temperature, as opposed to the higher-symmetry configurations explored previously. Our findings have important implications for the viability of this molecule as a qubit.
长期以来,Posner 分子 Ca(PO) 在各种生理过程中都被认为具有生物化学相关性。最近,人们关注的是它作为生物量子信息处理器的可能作用,据称该分子可以在其 P 核(假定为对称排列)之间保持长寿命的核自旋相干性,从而使其能够作为室温量子位发挥作用。尽管在计算中经常假设并利用点群对称性,但该分子的结构在文献中一直存在很大争议。使用各种模拟技术(包括分子动力学和结构弛豫)、严格的数据分析工具,并通过探索数千个单独的构型,我们确定该分子在室温下主要采用低对称结构( 和 ),而不是以前探索的更高对称构型。我们的发现对该分子作为量子位的可行性具有重要意义。