An atomic surface site interaction point description of non-covalent interactions
文献情報
Maria Chiara Storer, Katarzyna J. Zator, Derek P. Reynolds, Christopher A. Hunter
Molecular electrostatic potential surfaces (MEPS) calculated using density functional theory have been used to develop a simplified description of the non-covalent interaction properties of organic molecules. The Atomic Interaction Point (AIP) model introduced here represents an evolution of the Surface Site Interaction Point (SSIP) model described previously, in which a molecule is represented by a discrete set of interaction points that define sites of interaction with other molecules. The interaction sites are described by interaction parameters that are equivalent to the experimentally determined H-bond donor and acceptor parameters α and β. By using high electron density MEPS that lie inside the van der Waals surface, it is possible to obtain accurate interaction parameters and locations for polar sites (s-holes, H-bond donors and acceptors), which are identified as local maxima and minima on the MEPS. For non-polar sites that represent π-systems and halogens, an approach based on molecular orbitals was used to assign the locations of the AIPs, and the interaction parameters were obtained using a lower electron density MEPS that lies close to the van der Waals surface. The AIP descriptions can be implemented directly in the Surface Site Interaction Point Model for Liquids at Equilibrium (SSIMPLE) to calculate solvation free energies, and the free energy of transfer of 1504 compounds from n-hexadecane to water was predicted with a root mean square error of 5 kJ mol−1. AIPs also provide a useful tool for mapping non-covalent interactions in intermolecular complexes, and examples are provided showing how X-ray crystal structures can be converted into AIP interaction maps that allow quantification of the free energy contributions of both polar and non-polar interactions to the stabilities of complexes in solution.
関連文献
Selective mono reduction of bis-phosphine oxides under mild conditions
Maria J. Petersson, Wendy A. Loughlin, Ian D. Jenkins
DOI: 10.1039/B807695B
Amphiphilic block copolymer-stabilized gold nanoparticles for aerobic oxidation of alcohols in aqueous solution
Xueguang Wang, Hajime Kawanami, Nazrul M. Islam, Maya Chattergee, Toshirou Yokoyama, Yutaka Ikushima
DOI: 10.1039/B808201D
B-Alkyl Suzuki couplings for the stereoselective synthesis of substituted pyrans
Gregory W. O’Neil, Alois Fürstner
DOI: 10.1039/B806898D
Improved oxygen mobility in nanosized mixed-oxide particles synthesized using a simple nanocasting route
Magali Bonne, Nicolas Bion, Frédéric Pailloux, Sabine Valange, Sébastien Royer, Jean-Michel Tatibouët, Daniel Duprez
DOI: 10.1039/B808699K
Proton-coupled electron transfer from a luminescent excited state
Jonathan C. Freys, Gérald Bernardinelli, Oliver S. Wenger
DOI: 10.1039/B806175K
Biocompatible bacteria@Au composites for application in the photothermal destruction of cancer cells
Wen-Shuo Kuo, Ching-Ming Wu, Zih-Syuan Yang, Szu-Yu Chen, Cheng-Ying Chen, Chih-Chia Huang, Wei-Ming Li, Chi-Kuang Sun, Chen-Sheng Yeh
DOI: 10.1039/B808871C
State-resolved UV photofragmentation spectrum of the metal dication complex [Zn(pyridine)4]2+
Guohua Wu, Caroline Norris, Hamish Stewart, Hazel Cox, Anthony J. Stace
DOI: 10.1039/B806469E
Model systems for flavoenzyme activity: intramolecular self-assembly of a flavin derivative viahydrogen bonding and aromatic interactions
Stuart T. Caldwell, Graeme Cooke, Shanika G. Hewage, Suhil Mabruk, Gouher Rabani, Vincent Rotello, Brian O. Smith, Chandramouleeswaran Subramani, Patrice Woisel
DOI: 10.1039/B809762C
Transistors from a conjugated macrocycle molecule: field and photo effects
Wei Zhao, Qin Tang, Hoi Shan Chan, Jianbin Xu, Ka Yuen Lo, Qian Miao
DOI: 10.1039/B806601A
BiPh3—A convenient synthon for heavy alkaline-earth metal amides
Jonathan G. MacLellan, Craig M. Forsyth, Philip C. Andrews, Glen B. Deacon, Karin Ruhlandt-Senge
DOI: 10.1039/B806948D
こちらもおすすめ
2-ブロモ-9,9-ジフェニル-9H-フルオレンの主な用途は何ですか?
2-溴-9,9-二苯基芴は、医薬品、工業材料、有機合成の研究分野で応用されます。特に、レーザー材料や機能性ポリマーの合成に使用されることがあります。また、蛍光色...
四氯化铱の市場動向や研究トレンドはどうですか?
四氯化铱の市場は研究開発分野で注目されており、特にナノ技術や金属有機框架(MOFs)の分野での需要が増加傾向にあります。価格は安定しており、中国や韓国での生産が...
1-(4-溴-3-氟苯基)-2-氯乙酮を含む廃棄物はどのように処理すべきですか?
1-(4-溴-3-氟苯基)-2-氯乙酮 (CAS番号: 1260857-14-4) の廃棄物は専門的な廃棄処理が必要です。まず、廃棄物は密閉された容器に収集し、...
苦参酚Kとは何ですか?
苦参酚Kは、CAS番号101236-49-1を持つ化合物で、主に天然由来の生薬から抽出されます。この化合物は、抗炎症作用や抗癌作用を持つことが報告されています。
POTASSIUM (1-(TERTBUTOXYCARBONYL)AZETIDIN-3-YL)TRIFLUOROBORATE を含む廃棄物はどのように処理すべきですか?
POTASSIUM (1-(TERTBUTOXYCARBONYL)AZETIDIN-3-YL)TRIFLUOROBORATE を含む廃棄物は、まず安全なエント...
4-庚基-4’-联苯羧酸の市場動向や研究トレンドはどうですか?
4-庚基-4’-聯苯羧酸は、特殊化学品や合成化学の分野で用いられる化学物質ですが、市場動向としては、研究開発の進展とともに需要が増加しています。また、環境配慮型...
6-ブロモ-3-メトキシ-1-フェニル-1H-インドゾールを含む廃棄物はどのように処理すべきですか?
6-ブロモ-3-メトキシ-1-フェニル-1H-インドゾールを含む廃棄物は、適切な化学廃棄処理が必要です。通常、廃棄物は密閉容器に収集され、専門の廃棄処理業者に引...
4,4-二甲基-2-吡咯烷酮はどの業界で使用されていますか?
4,4-二甲基-2-吡咯烷酮は医薬、ポリマー、センサー、半導体などの業界で広く使用されています。特に溶媒としての性能が高く評価されています。
掲載誌
Chemical Science

Our journal has a wide-ranging scope which covers the full breadth of the chemical sciences. The research we publish contains the sorts of novel ideas, challenging questions and progressive thinking that bring undiscovered breakthroughs within reach. Your paper could focus on a single area, or cross many. It could be beyond the accepted bounds of the chemical sciences. It might address an immediate challenge, contribute to a future breakthrough or be wholly conceptual. We’re a team from every field of the chemical sciences, and know from experience that breakthroughs that drive the solutions to global challenges can come from anywhere, at any time. You could even start an entirely new area of research. Too bold? Too progressive? No such thing













![Pyrazolo[1,5-a]pyridine-3-carbothioamide structure Pyrazolo[1,5-a]pyridine-3-carbothioamide structure](https://static.chemtradehub.com/structs/885/885275-44-5-aae0.webp)
