School of Engineering Sciences, Computational Engineering and Design Group, University of Southampton, SO17 1BJ, UK.
Phys Chem Chem Phys. 2013 Jul 14;15(26):10930-41. doi: 10.1039/c3cp50788b. Epub 2013 May 24.
Copper porphyrin dissolved in CH2Cl2:toluene as fluid and frozen solution was studied as a function of temperature using X-band electron paramagnetic resonance (EPR). Quantitative interpretation was obtained using a recently developed Stochastic Liouville simulation method. For the first time we address the large spin system that translates into a 400,000 dimensional Liouville equation solved under slow-motion conditions. Using a simple three parameter microscopic model, the temperature dependence of porphyrin rotational correlation time is determined to be in the range 1-10 ns and a fast local motion is in the subpico-second regime with an amplitude increasing with temperature. The methodology provides an important tool for arriving at an accurate set of spin Hamiltonian parameters since determining a unique set of parameters from a frozen solution EPR experiment is often difficult. Thus, the proposed method discriminates between parameters proposed from frozen solution EPR experiments or quantum chemistry calculations. The methodology presented is expected to be valuable in obtaining a molecular dynamics picture of metal proteins using EPR as well as in the study of artificial photosynthetic systems.
将铜卟啉溶解在 CH2Cl2:甲苯混合溶剂中作为流动相和冷冻溶液,通过 X 波段电子顺磁共振(EPR)研究其温度依赖性。使用最近开发的随机刘维尔模拟方法进行定量解释。我们首次处理了大型自旋体系,该体系转化为在慢动力学条件下求解的 40 万维刘维尔方程。使用简单的三参数微观模型,确定了卟啉旋转相关时间的温度依赖性在 1-10 ns 范围内,并且局部快速运动处于亚皮秒范围,其幅度随温度增加而增加。该方法为获得准确的自旋哈密顿参数集提供了重要工具,因为从冷冻溶液 EPR 实验确定唯一的参数集通常很困难。因此,该方法可以区分从冷冻溶液 EPR 实验或量子化学计算中提出的参数。该方法有望在使用 EPR 获得金属蛋白的分子动力学图像以及在人工光合作用系统的研究中具有价值。