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Intrinsic local constituents of molecular electronic wave functions. I. Exact representation of the density matrix in terms of chemically deformed and oriented atomic minimal basis set orbitals

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TLDR
In this article, a coherent, intrinsic, basis-set-independent analysis for the invariants of the first-order density matrix of an accurate molecular electronic wave function is developed.
Abstract
A coherent, intrinsic, basis-set-independent analysis is developed for the invariants of the first-order density matrix of an accurate molecular electronic wavefunction. From the hierarchical ordering of the natural orbitals, the zeroth-order orbital space is deduced, which generates the zeroth-order wavefunction, typically an MCSCF function in the full valence space. It is shown that intrinsically embedded in such wavefunctions are elements that are local in bond regions and elements that are local in atomic regions. Basis-set-independent methods are given that extract and exhibit the intrinsic bond orbitals and the intrinsic minimal-basis quasi-atomic orbitals in terms of which the wavefunction can be exactly constructed. The quasi-atomic orbitals are furthermore oriented by a basis-set independent method (viz. maximization of the sum of the fourth powers of all off-diagonal density matrix elements) so as to exhibit clearly the chemical interactions. The unbiased nature of the method allows for the adaptation of the localized and directed orbitals to changing geometries.

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Journal ArticleDOI

Intrinsic Atomic Orbitals: An Unbiased Bridge between Quantum Theory and Chemical Concepts.

TL;DR: An exceptionally simple algebraic construction allows for defining atomic core and valence orbitals, polarized by the molecular environment, which can exactly represent self-consistent field wave functions, providing an unbiased and direct connection between quantum chemistry and empirical chemical concepts.
Journal ArticleDOI

Recent developments in the general atomic and molecular electronic structure system.

TL;DR: A discussion of many of the recently implemented features of GAMESS (General Atomic and Molecular Electronic Structure System) and LibCChem (the C++ CPU/GPU library associated with GAMESS) is presented, which include fragmentation methods, hybrid MPI/OpenMP approaches to Hartree-Fock, and resolution of the identity second order perturbation theory.
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Chemical Bonding and Bonding Models of Main-Group Compounds

TL;DR: This review examines the basis of the commonly used quantum chemical methods for calculating molecules and for analyzing their electronic structure and the bonding situation in selected representative molecules of main-group atoms is discussed.
Journal ArticleDOI

Automated Construction of Molecular Active Spaces from Atomic Valence Orbitals

TL;DR: The atomic valence active space technique is introduced, a simple and well-defined automated technique for constructing active orbital spaces for use in multiconfiguration and multireference electronic structure calculations that makes MR calculations easier to execute, easier to reproduce by any user, and simplifies the determination of the appropriate size of the active space required for accurate results.
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A perspective on quantum mechanics and chemical concepts in describing noncovalent interactions

TL;DR: These issues can be fully explained in coulombic terms, electrostatics and polarization (which include electronic correlation and dispersion) in the context of noncovalent interactions.
References
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Book

Matrix computations

Gene H. Golub
Book

Atoms in molecules : a quantum theory

TL;DR: In this article, the quantum atom and the topology of the charge desnity of a quantum atom are discussed, as well as the mechanics of an atom in a molecule.
Journal ArticleDOI

Electronic Population Analysis on LCAO–MO Molecular Wave Functions. I

TL;DR: In this paper, an analysis in quantitative form is given in terms of breakdowns of the electronic population into partial and total ''gross atomic populations'' and ''overlap populations'' for molecules.
Journal ArticleDOI

Natural hybrid orbitals

TL;DR: In this paper, a method for extracting a unique set of atomic hybrids and bond orbitals for a given molecule, thereby constructing its Lewis structure in an a priori manner, is described.
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