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Nanoscale Multireference Quantum Chemistry: Full Configuration Interaction on Graphical Processing Units

机译:纳米级多参考量子化学:图形处理单元上的完整配置相互作用

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Methods based on a full configuration interaction (FCI) expansion in an active space of orbitals are widely used for modeling chemical phenomena such as bond breaking, multiply excited states, and conical intersections in small-to-medium-sized molecules, but these phenomena occur in systems of all sizes. To scale such calculations up to the nanoscale, we have developed an implementation of FCI in which electron repulsion integral transformation and several of the more expensive steps in a vector formation are performed on graphical processing unit (GPU) hardware. When applied to a 1.7 x 1.4 x 1.4 nm silicon nanoparticle (Si72H64) described with the polarized, all-electron 6-31G** basis set, our implementation can solve for the ground state of the 16-active-electron/16-active-orbital CASCI Hamiltonian (more than 100,000,000 configurations) in 39 min on a single NVidia K40 GPU.
机译:基于在轨道的活动空间中的完全配置相互作用(FCI)扩展的方法被广泛用于对化学现象进行建模,例如中小分子中的键断裂,多重激发态和圆锥形相交,但是这些现象会发生在各种规模的系统中。为了将此类计算扩展到纳米级,我们开发了FCI的实现,其中在图形处理单元(GPU)硬件上执行电子斥力积分变换和矢量形成过程中的一些较昂贵的步骤。当应用于具有极化全电子6-31G **基集描述的1.7 x 1.4 x 1.4 nm硅纳米粒子(Si72H64)时,我们的实现可以解决16活性电子/ 16活性电子的基态在单个NVidia K40 GPU上在39分钟内实现轨道CASCI哈密顿量(超过100,000,000个配置)。

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