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Excited-State Electronic Structure with Configuration Interaction Singles and Tamm–Dancoff Time-Dependent Density Functional Theory on Graphical Processing Units

机译:具有图形相互作用单元和Tamm–Dancoff时间相关密度函数理论的图形处理单元的激发态电子结构

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摘要

Excited-state calculations are implemented in a development version of the GPU-based TeraChem software package using the configuration interaction singles (CIS) and adiabatic linear response Tamm–Dancoff time-dependent density functional theory (TDA-TDDFT) methods. The speedup of the CIS and TDDFT methods using GPU-based electron repulsion integrals and density functional quadrature integration allows full ab initio excited-state calculations on molecules of unprecedented size. CIS/6-31G and TD-BLYP/6-31G benchmark timings are presented for a range of systems, including four generations of oligothiophene dendrimers, photoactive yellow protein (PYP), and the PYP chromophore solvated with 900 quantum mechanical water molecules. The effects of double and single precision integration are discussed, and mixed precision GPU integration is shown to give extremely good numerical accuracy for both CIS and TDDFT excitation energies (excitation energies within 0.0005 eV of extended double precision CPU results).
机译:激发态计算在基于GPU的TeraChem软件包的开发版本中使用配置相互作用单(CIS)和绝热线性响应Tamm–Dancoff时变密度泛函理论(TDA-TDDFT)方法实现。使用基于GPU的电子斥力积分和密度泛函正交积分加速CIS和TDDFT方法,可以对前所未有的分子进行从头算起的激发态计算。 CIS / 6-31G和TD-BLYP / 6-31G基准定时用于一系列系统,包括四代寡噻吩树枝状大分子,光敏黄色蛋白(PYP)和用900个量子机械水分子溶剂化的PYP生色团。讨论了双精度和单精度集成的影响,并且显示了混合精度GPU集成对于CIS和TDDFT激励能量(激励能量在扩展的双精度CPU结果的0.0005 eV范围内)均提供了非常好的数值精度。

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