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引用次数: 0
摘要
在量子信息科学和传感领域,电子自旋通常通过光学自旋界面纯化为特定的极化,这一过程被称为光学检测磁共振(ODMR)。金刚石-NV 中心和过渡金属都是这些所谓色彩中心的绝佳平台,而无金属分子类似物也因其极化寿命长、对环境影响小和成本低而越来越受欢迎。我们早先尝试设计这种有机高自旋 π-二元化合物时,曾提出通过将三重 M S = ±1 群体搁置为单子来实现自旋极化。尽管 M S = 0 子级的 ODMR 对比度较低,但最近的实验验证了这一点,设计出了真正的碳基分子类似物 NV 中心。我们的建议基于对最近邻自旋轨道耦合的过渡轨道和基团理论分析,并通过对一个现实的三烷基自由基二聚体的 ab initio 计算得到进一步证实。微动力学分析表明,在实验可行的条件下,ODMR 对比度高达 30% 左右,与之前的研究相比有了显著的提高。最后,在追求基态可光学寻址分子自旋量子比特的过程中,我们举例说明了基于对称性的设计如何避免泽曼诱导的单三重混合,为实现电子自旋量子比特门奠定了基础。
Enhancing the Optically Detected Magnetic Resonance Signal of Organic Molecular Qubits.
In quantum information science and sensing, electron spins are often purified into a specific polarization through an optical-spin interface, a process known as optically detected magnetic resonance (ODMR). Diamond-NV centers and transition metals are both excellent platforms for these so-called color centers, while metal-free molecular analogues are also gaining popularity for their extended polarization lifetimes, milder environmental impacts, and reduced costs. In our earlier attempt at designing such organic high-spin π-diradicals, we proposed to spin-polarize by shelving triplet MS = ±1 populations as singlets. This was recently verified by experiments albeit with low ODMR contrasts of <1% at temperatures above 5 K. In this work, we propose to improve the ODMR signal by moving singlet populations back into the triplet MS = 0 sublevel, designing a true carbon-based molecular analogue to the NV center. Our proposal is based upon transition-orbital and group-theoretical analyses of beyond-nearest-neighbor spin-orbit couplings, which are further confirmed by ab initio calculations of a realistic trityl-based radical dimer. Microkinetic analyses point toward high ODMR contrasts of around 30% under experimentally feasible conditions, a stark improvement from previous works. Finally, in our quest toward ground-state optically addressable molecular spin qubits, we exemplify how our symmetry-based design avoids Zeeman-induced singlet-triplet mixings, setting the scene for realizing electron spin qubit gates.
期刊介绍:
ACS Central Science publishes significant primary reports on research in chemistry and allied fields where chemical approaches are pivotal. As the first fully open-access journal by the American Chemical Society, it covers compelling and important contributions to the broad chemistry and scientific community. "Central science," a term popularized nearly 40 years ago, emphasizes chemistry's central role in connecting physical and life sciences, and fundamental sciences with applied disciplines like medicine and engineering. The journal focuses on exceptional quality articles, addressing advances in fundamental chemistry and interdisciplinary research.