相关实验视频
Updated: Jul 11, 2025

06:42
Generation and Coherent Control of Pulsed Quantum Frequency Combs
Published on: June 8, 2018
9.0K
通过理性设计增强色素基分子量子和量子的连贯时间
Yunfan Qiu1, Hannah J Eckvahl1, Asif Equbal1
1Department of Chemistry, Center for Molecular Quantum Transduction, and Paula M. Trienens Institute for Sustainability and Energy at Northwestern, Northwestern University, Evanston, Illinois 60208-3313, United States.
Journal of the American Chemical Society
|November 14, 2023
概括
研究人员通过优化分子结构来增强分子自旋量子位和量子位相干时间. 这种结构设计协议实现了显著更长的连贯时间,
科学领域:
- 量子信息科学
- 分子自旋动力学
- 材料化学
背景情况:
- 对于有效的量子操作来说, 长时间的连贯性是必不可少的.
- 分子自旋量子比特和量子比特为量子信息处理提供了潜力.
- 了解结构属性关系是提高分子量子比特性能的关键.
研究的目的:
- 研究分子结构对分子自旋量子位和量子位的连贯时间的影响.
- 开发一种合理的设计策略,以提高分子自旋系统的连贯时间.
- 合成和描述用于量子应用的新型二氧化基分子.
主要方法:
- 聚二胺 (PDI) 染色体的合成与稳定的氧化基结合.
- 使用脉冲电子磁共振 (EPR) 光谱的研究.
- 通过选择性化和消除分子内运动来定制分子结构.
主要成果:
- PDI的光激发会产生激发四边形 (Q) 和旋极双边形 (D0) 的状态.
- 在85K时达到T_m=9.1±0.3μs的D0和4.2±0.3μs的Q连贯时间.
- 与最初的分子设计相比, 连贯时间几乎增加了3倍.
结论:
- 分子结构显著影响自旋量子位和量子位的连贯时间.
- 合理的结构设计,包括化和运动抑制,有效地延长连贯时间.
- 开发的协议为创建具有改进性能的先进分子自旋量子位/量子位提供了途径.
相关概念视频
Radical Reactivity: Overview
2.1K
Radicals, the highly reactive species, gain stability by undergoing three different reactions. The first reaction involves a radical-radical coupling, in which a radical combines with another radical, forming a spin‐paired molecule. The second reaction is between a radical and a spin‐paired molecule, generating a new radical and a new spin‐paired molecule. The third reaction is radical decomposition in a unimolecular reaction, forming a new radical and a spin‐paired...
2.1K
¹³C NMR: Distortionless Enhancement by Polarization Transfer (DEPT)
1.1K
When proton-coupled carbon-13 spectra are simplified by a broadband proton decoupling technique, structural information about the coupled protons is lost. Distortionless enhancement by polarization transfer (DEPT) is a technique that provides information on the number of hydrogens attached to each carbon in a molecule. While the DEPT experiment utilizes complex pulse sequences, the pulse delay and flip angle are specifically manipulated. The resulting signals have different phases depending on...
1.1K
Electron Paramagnetic Resonance (EPR) Spectroscopy: Organic Radicals
2.6K
Ideally, an unpaired electron shows a single peak in the EPR spectrum due to the transition between the two spin energy states. However, coupling interactions can occur between the spins of the unpaired electron and any neighboring spin-active nuclei. This hyperfine coupling results in hyperfine splitting, where the EPR signal is split into multiplets. The signals split into 2nI + 1 peaks, where n is the number of equivalent nuclei and I is the nuclear spin. These splitting patterns provide...
2.6K
Double Resonance Techniques: Overview
218
Double resonance techniques in Nuclear Magnetic Resonance (NMR) spectroscopy involve the simultaneous application of two different frequencies or radiofrequency pulses to manipulate and observe two distinct nuclear spins. One important application of double resonance is spin decoupling, which selectively suppresses coupling with one type of nucleus while observing the NMR signal from another nucleus, simplifying the spectrum and enhancing resolution.
Spin decoupling is usually achieved by...
Spin decoupling is usually achieved by...
218
Radical Formation: Addition
1.7K
Radicals can be formed by adding a radical to a spin-paired molecule. This is typically observed with unsaturated species, where the addition of a radical across the π bond leads to the production of a new radical by dissolving the π bond. For example, the addition of a Br radical to an alkene yields a carbon-centered radical.
Similar to charge conservation in chemical reactions, spin conservation is implicit for radical reactions. Accordingly, the product formed must possess an...
Similar to charge conservation in chemical reactions, spin conservation is implicit for radical reactions. Accordingly, the product formed must possess an...
1.7K
Radical Reactivity: Steric Effects
1.9K
The presence of electron-donating, electron-withdrawing, or conjugating groups adjacent to a radical center, imparts electronic stabilization to the radicals. Examples of such electronically-stabilized radicals are triphenylmethyl, tetramethylpiperidine‐N‐oxide, and 2,2‐diphenyl‐1‐picrylhydrazyl. These radicals are remarkably stable and are known as persistent radicals. Some of the persistent radicals can even be isolated and purified.
Along with electronic...
Along with electronic...
1.9K

