Department of Chemistry, University of Cambridge, Lensfield Road, Cambridge CB2 1EW, UK.
Philos Trans A Math Phys Eng Sci. 2012 Jun 28;370(1969):2877-99. doi: 10.1098/rsta.2011.0208.
Describing a potential energy surface in terms of local minima and the transition states that connect them provides a conceptual and computational framework for understanding and predicting observable properties. Visualizing the potential energy landscape using disconnectivity graphs supplies a graphical connection between different structure-seeking systems, which can relax efficiently to a particular morphology. Landscapes involving competing morphologies support multiple potential energy funnels, which may exhibit characteristic heat capacity features and relaxation time scales. These connections between the organization of the potential energy landscape and structure, dynamics and thermodynamics are common to all the examples presented, ranging from atomic and molecular clusters to biomolecules and soft and condensed matter. Further connections between motifs in the energy landscape and the interparticle forces can be developed using symmetry considerations and results from catastrophe theory.
用局部极小值和连接它们的过渡态来描述势能面,为理解和预测可观察的性质提供了一个概念和计算框架。使用不连续图来可视化势能景观,为不同的结构搜索系统之间提供了图形连接,这些系统可以有效地松弛到特定的形态。涉及竞争形态的景观支持多个势能漏斗,这些漏斗可能表现出特征热容特征和弛豫时间尺度。这些势能景观的组织与结构、动力学和热力学之间的联系在呈现的所有例子中都是常见的,从原子和分子团簇到生物分子以及软物质和凝聚态物质。使用对称考虑和突变理论的结果,可以在能量景观中的图案之间建立进一步的联系,以及粒子间的力。