Kaledin Alexey L, Hill Craig L, Lian Tianquan, Musaev Djamaladdin G
Cherry L. Emerson Center for Scientific Computation and Department of Chemistry, Emory University, Atlanta, 30322, Georgia.
J Comput Chem. 2019 Jan 5;40(1):212-221. doi: 10.1002/jcc.25373. Epub 2018 Oct 3.
We describe a bulk adjusted linear combination of atomic orbitals (BA-LCAO) approach for nanoparticles. In this method, we apply a many-body scaling function (in similar manner as in the environment-modified total energy based tight-binding method) to the DFT-derived diatomic AO interaction potentials (like in the conventional orbital-based density-functional tight binding approach) strictly according to atomic valences acquired naturally in a bulk structure. This modification, (a) facilitates all atom orbital-based electronic structure calculations of charge carrier dynamics in nanoscale structures with a molecular acceptor, and (b) allows to closely match high-level density functional calculation data (previously adjusted to the available experimental findings) for bulk structures. To advance practical application of the BA-LCAO approach we parameterize the Hamiltonian of wurtzite CdSe by fitting its band structure to a high-level DFT reference, corrected for experimentally measured band edges. Here, unlike in conventional DFTB approach, we: (1) use hydrogen-like AOs for the basis as exact atomic eigenfunctions, while orbital energies of which are taken from experimentally measured ionization potentials, and (2) parameterize the many-body scaling functions rather than the atomic wavefunctions. Development of this approach and parameters is guided by our goals to devise a method capable of simultaneously treating the problems of (i) interfacial electron/hole transfer between finite, variable size nanoparticles and electron scavenging molecules, and (ii) high-energy electronic transitions (Auger transitions) that mediate multi-exciton decay in quantum dots. Electronic structure results are described for CdSe quantum dots of various sizes. © 2018 Wiley Periodicals, Inc.
我们描述了一种用于纳米粒子的原子轨道体相调整线性组合(BA-LCAO)方法。在该方法中,我们以与环境修正的基于总能的紧束缚方法类似的方式,将多体标度函数严格按照在体相结构中自然获得的原子价态应用于密度泛函理论(DFT)导出的双原子原子轨道(AO)相互作用势(如同传统的基于轨道的密度泛函紧束缚方法)。这种修正,(a)便于对具有分子受体的纳米级结构中电荷载流子动力学进行基于所有原子轨道的电子结构计算,并且(b)能够紧密匹配体相结构的高水平密度泛函计算数据(先前已根据现有实验结果进行调整)。为了推进BA-LCAO方法的实际应用,我们通过将纤锌矿CdSe的能带结构拟合到经过实验测量的带边修正的高水平DFT参考,对其哈密顿量进行参数化。在此,与传统的DFTB方法不同,我们:(1)使用类氢原子轨道作为精确的原子本征函数作为基,其轨道能量取自实验测量的电离势,并且(2)对多体标度函数而非原子波函数进行参数化。该方法及其参数的开发是由我们的目标所引导的,即设计一种能够同时处理以下问题的方法:(i)有限尺寸可变的纳米粒子与电子清除分子之间的界面电子/空穴转移,以及(ii)介导量子点中多激子衰变的高能电子跃迁(俄歇跃迁)。描述了各种尺寸的CdSe量子点的电子结构结果。© 2018威利期刊公司