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Magnetic resonance of a single molecular spin [Review]

机译:单分子自旋的磁共振[综述]

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Magnetic-resonance spectroscopy on single molecules represents the ultimate limit in sensitivity of electron spin resonance: the detection of a single molecular spin. This is achieved by combining single molecule spectroscopy and optically detected magnetic resonance. Experimental results on pentacene in p-terphenyl both in zero-field and in the presence of a weak magnetic field demonstrate that magnetic-resonance spectroscopy on single molecules adds on to the specificity of single-molecule spectroscopy. It proved possible to identify single molecules which contain C-13 nuclei in natural abundance and to observe the splitting of the electron spin resonance line resulting from the hyperfine intercation of a single molecular spin with a single C-13 nuclear spin. From the Zeeman effect the orientation of the symmetry axes of individual molecules with respect to the direction of the external magnetic field is obtained. This allows to compare the orientation of individual molecules with their substitutional-site specific transition frequencies depending on the quality of the host crystal. (C) 1999 Elsevier Science B.V. All rights reserved. [References: 165]
机译:单个分子的磁共振波谱代表了电子自旋共振灵敏度的最终极限:检测单个分子自旋。这是通过结合单分子光谱法和光学检测的磁共振来实现的。在零场和弱磁场存在下对并五苯中并五苯的实验结果表明,单分子磁共振波谱增加了单分子波谱的特异性。事实证明,可以鉴定出自然界中包含C-13核的单个分子,并观察到由于单个分子自旋与单个C-13核自旋的超精细相互作用而引起的电子自旋共振线的分裂。通过塞曼效应,获得了各个分子的对称轴相对于外部磁场方向的定向。这使得可以根据基质晶体的质量来比较单个分子的取向及其取代位的特定跃迁频率。 (C)1999 Elsevier Science B.V.保留所有权利。 [参考:165]

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