论文标题

用于高通量和交互式量子化学的超快速光谱

Ultra-fast Spectroscopy for High-Throughput and Interactive Quantum Chemistry

论文作者

Bosia, Francesco, Weymuth, Thomas, Reiher, Markus

论文摘要

我们提出了用于计算红外和紫外线可见光谱的超快速量子化学方法,该光谱旨在在分子结构的自主和交互式探索过程中提供指纹信息。特征光谱信号可以用作诊断和表征分子结构的诊断探针。这些特征通常不需要在峰位置和强度方面的最终准确性,这可以减轻超快速电子结构方法中的准确时间困境。如果补充了近似的超快速算法,以检测信号位置和强度的潜在大型预测错误的不确定性定量方案,则始终有可能确认或丢弃超快速方法的预测。在这里,我们为这种方案提供了超快速的电子结构方法,以获取地面和激发的电子能,偶极矩及其在振动光谱和光体物理学中实时应用的衍生物。作为这项努力的一部分,我们设计了一种用于振动光谱的信息传播部分Hessian方法,一种定制的子空间对角线方法和激发态计算的决定因素选择方案。

We present ultra-fast quantum chemical methods for the calculation of infrared and ultraviolet-visible spectra designed to provide fingerprint information during autonomous and interactive explorations of molecular structures. Characteristic spectral signals can serve as diagnostic probes for the identification and characterization of molecular structures. These features often do not require ultimate accuracy with respect to peak position and intensity, which alleviates the accuracy-time dilemma in ultra-fast electronic structure methods. If approximate ultra-fast algorithms are supplemented with an uncertainty quantification scheme for the detection of potentially large prediction errors in signal position and intensity, an offline refinement will always be possible to confirm or discard the predictions of the ultra-fast approach. Here, we present ultra-fast electronic structure methods for such a protocol in order to obtain ground- and excited-state electronic energies, dipole moments, and their derivatives for real-time applications in vibrational spectroscopy and photophysics. As part of this endeavor, we devise an information-inheritance partial Hessian approach for vibrational spectroscopy, a tailored subspace diagonalization approach and a determinant-selection scheme for excited-state calculations.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源