A perspective on nonresonant and resonant electronic response theory for time-dependent molecular properties

文献情報

出版日 2011-10-04
DOI 10.1039/C1CP21951K
インパクトファクター 3.676
著者

Patrick Norman


原文を見る

要旨

The development of electronic response theory in quantum chemistry has been reviewed, starting from the early 1970's and reaching the current state-of-the-art. The general theory has been applied to the calculation of a large number of spectroscopic parameters over the years, and it has been implemented for the majority of standard electronic structure methods. Two formulations of response theory, the Ehrenfest expectation value and the quasi-energy derivative formulation, have turned into leading alternatives for the derivation of computationally tractable expressions of response functions, and they are here reviewed with an attempt to, as far as possible, leave out technical details. A set of four steps are identified as common in derivations of response functions, and the two formulations are compared along this series of steps. Particular emphasis is given to the situation when the oscillation of the weak external electromagnetic field is in resonance with a transition frequency of the system. The formation of physically sound response functions in resonance regions of the spectrum is discussed in light of the causality condition and the Kramers–Kronig relations, and it is achieved in wave function theory by means of the introduction of relaxation parameters in a manner that mimics what one sees in density matrix theory. As a working example, equations are illustrated by their application to a two-state model for para-nitroaniline including the ground and the lowest charge-transfer state in the electric dipole approximation.

関連文献

Streamlined chemoenzymatic total synthesis of prioritized ganglioside cancer antigens

Hai Yu, Abhishek Santra, Yanhong Li, John B. McArthur, Tamashree Ghosh, Xiaoxiao Yang, Peng G. Wang, Xi Chen

2018-05-14 Communication

DOI: 10.1039/C8OB01087K

Intramolecular iron-catalyzed transannulation of furans with O-acetyl oximes: synthesis of functionalized pyrroles

Anton S. Makarov, Alexander A. Fadeev, Maxim G. Uchuskin

2021-10-05 Research Article

DOI: 10.1039/D1QO01281A

Tetra-substituted furans by a gold-catalysed tandem C(sp3)–H alkynylation/oxy-alkynylation reaction

Chunyu Han, Xianhai Tian, Lina Song, Yaowen Liu

2021-10-05 Research Article

DOI: 10.1039/D1QO01401C

Facile synthesis of 2,3-benzodiazepines using one-pot two-step phosphate-assisted acylation–hydrazine cyclization reactions

Akinari Sumita, Yuko Otani, Tomohiko Ohwada

2018-05-09 Paper

DOI: 10.1039/C8OB00708J

Hydroxyl group-directed, tartaric acid-catalyzed synthesis of meta-functionalized aryl ethers and phenols through domino conjugate addition/aromatization of para-quinols

Guo-Shu Chen, Jia-Hui Li, Shu-Jie Chen, Wen-Xia Lin, Hai Ren, Dong-Sheng Deng, Yun-Lin Liu

2021-10-02 Research Article

DOI: 10.1039/D1QO01078F

2-Pyridinylmethyl borrowing: base-promoted C-alkylation of (pyridin-2-yl)-methyl alcohols with ketones via cleavage of unstrained C(sp3)–C(sp3) bonds

Chuan-Ming Hong, Fei-Fei Zou, Xin Zhuang, Zhen Luo, Zheng-Qiang Liu, Li-Qing Ren, Qing-Hua Li, Tang-Lin Liu

2021-11-23 Research Article

DOI: 10.1039/D1QO01446C

High pressure-assisted low-loading asymmetric organocatalytic conjugate addition of nitroalkanes to chalcones‡

Agnieszka Cholewiak, Kamil Adamczyk, Michał Kopyt, Adrian Kasztelan, Piotr Kwiatkowski

2018-05-22 Paper

DOI: 10.1039/C8OB00561C

Nickel-catalyzed electrochemical reductive relay cross-coupling of alkyl halides with alkyl carboxylic acids

Cong Ma, Dong Liu, Hui Qiu, Bin Cheng, Tian-Sheng Mei

2021-10-07 Research Article

DOI: 10.1039/D1QO01219C

Nickel-catalyzed cascade carbonylative synthesis of N-benzoyl indoles from 2-nitroalkynes and aryl iodides

Lingyun Yao, Jun Ying

2021-10-05 Research Article

DOI: 10.1039/D1QO01284C

A transition-metal-free, base-promoted annulation/ring-cleavage/ring-reconstruction cascade reaction: a facile access to N-protection free indole-indenones

Na Luo, Zhen-Wei Sun, Xing-Xin Xu, Xiao-Qiang Hu, Feng-Cheng Jia

2021-10-05 Research Article

DOI: 10.1039/D1QO01280K

こちらもおすすめ

化合物よくある質問

環戊烷-1,3-二甲酸甲酯はどのように合成されますか?

環戊烷-1,3-二甲酸甲酯は、環戊烷と塩酸によるヒンデンブルク反応を経由して合成されます。この反応では、環戊烷が塩酸と作用し、1,3-ジカルボキシ基が導入されま...

2435-36-1Dimethyl 1,3-cyclope...
化合物よくある質問

4-メトキシ-1,2,3-スチアゼ-3,5-ジオンとは何ですか?

4-メトキシ-1,2,3-スチアゼ-3,5-ジオンは、CAS番号107843-77-6の化合物で、(E)-ベンジル3-(3,4-ジヒドロキシフェニル) acry...

107843-77-6(E)-Benzyl 3-(3,4-di...
化合物よくある質問

プロスタグランジンA2について「に適用される法規ガイドラインは何ですか?'

プロスタグランジンA2 (CAS番号: 41691-92-3) は、化学物質の安全管理に関する規制として、GHS (危険物質の国際的ハザード分類・ラベル付けシス...

41691-92-316,16-DIMETHYL PROST...
化合物よくある質問

4-アミノ-1-ナフタレン sulfonic 酸についての物理化学的性質は何ですか?

4-アミノ-1-ナフタレン sulfonic 酸のCAS番号は84-86-6です。この化合物は結晶性で、分子量は212.15 g/molです。アルコールや水など...

84-86-64-Amino-1-naphthalen...
化合物よくある質問

N-GlcNAc-生物素を取り扱う際の実験室安全事項は何ですか?

N-GlcNAc-生物素は吸収性があり、皮膚や目への接触を避けることが重要です。PPE(個体保護具)は使用し、ドラフトチャンバーは必要に応じて使用します。漏洩時...

1272755-69-72-Acetamido-2-deoxy-...
化合物よくある質問

3-アミノメチルフローラノピペリジン-1-カルボニル酸テルブチルエステルとは何ですか?

CAS番号1209781-11-2の3-アミノメチルフローラノピペリジン-1-カルボニル酸テルブチルエステルは、有機化合物の一種で、化学式はC10H17FNO3...

1209781-11-22-Methyl-2-propanyl ...
化合物よくある質問

6-溴-1-甲基-1H-ベンゾ[d][1,2,3]三氮唑はどのように合成されますか?

6- bromo-1-methyl-1H-benzotriazoleは、ブロモフリオリンと1-メチル-1H-ベンゾ[d][1,2,3]三氮唑の反応により合成され...

944718-32-56-Bromo-1-methyl-1H-...
化合物よくある質問

4-硫代尿苷はどのように合成されますか?

4-硫代尿苷は、尿素とD-リボシルヒドロキシアルデヒドを用いてスルホン化反応を経て合成されます。通常は塩酸ヒドロキシチオニルスルホン酸などの触媒を使用し、選択性...

6741-73-71-(4-thio-beta-D-rib...
化合物よくある質問

ブレインナトリユリックペプチド32ラットとは何ですか?

ブレインナトリユリックペプチド32ラット(CAS番号: 133448-20-1)は、心臓で作られるホルモンの一つで、心不全の診断や予後評価に使用されます。

133448-20-1Brain Natriuretic Pe...
化合物よくある質問

1-(3-氮杂啶)-4-羟基哌啶双盐酸盐の物理化学的性質は何ですか?

CAS番号810680-60-5の1-(3-氮杂啶)-4-羟基哌啶双盐酸盐は、白色の結晶性粉末である。分子量は360.84 g/molで、水に溶けやすい。反応活...

810680-60-51-(3-Azetidinyl)-4-p...

掲載誌

Physical Chemistry Chemical Physics

Physical Chemistry Chemical Physics
CiteScore: 5.5
自己引用率: 10.3%
年間論文数: 3036

Physical Chemistry Chemical Physics (PCCP) is an international journal co-owned by 19 physical chemistry and physics societies from around the world. This journal publishes original, cutting-edge research in physical chemistry, chemical physics and biophysical chemistry. To be suitable for publication in PCCP, articles must include significant innovation and/or insight into physical chemistry; this is the most important criterion that reviewers and Editors will judge against when evaluating submissions. The journal has a broad scope and welcomes contributions spanning experiment, theory, computation and data science. Topical coverage includes spectroscopy, dynamics, kinetics, statistical mechanics, thermodynamics, electrochemistry, catalysis, surface science, quantum mechanics, quantum computing and machine learning. Interdisciplinary research areas such as polymers and soft matter, materials, nanoscience, energy, surfaces/interfaces, and biophysical chemistry are welcomed if they demonstrate significant innovation and/or insight into physical chemistry. Joined experimental/theoretical studies are particularly appreciated when complementary and based on up-to-date approaches.

おすすめサプライヤー

免責事項
このページに表示される学術雑誌情報は、参考および研究目的のみを目的としています。当社は雑誌出版社とは提携しておらず、投稿の取り扱いも行っておりません。出版に関するお問い合わせは、各雑誌出版社に直接ご連絡ください。
表示されている情報に誤りがある場合は、support@chemtradehub.com までご連絡ください。迅速に確認し、対応いたします。