A 3D-RISM-SCF method with dual solvent boxes for a highly polarized system: application to 1,6-anhydrosugar formation reaction of phenyl α- and β-d-glucosides under basic conditions

文献情報

出版日 2013-03-01
DOI 10.1039/C3CP43892A
インパクトファクター 3.676
著者

Shinji Aono, Takashi Hosoya, Shigeyoshi Sakaki


原文を見る

要旨

One of the difficulties in application of the usual reference interaction site model self-consistent field (RISM-SCF) method to a highly polarized and bulky system arises from the approximate evaluation of electrostatic potential (ESP) with pure point charges. To improve this ESP evaluation, the ESP near a solute is directly calculated with a solute electronic wavefunction, that distant from a solute is approximately calculated with solute point charges, and they are connected with a switching function. To evaluate the fine solvation structure near the solute by incorporating the long-range solute–solvent Coulombic interaction with low computational cost, we introduced the dual solvent box protocol; one small box with the fine spacing is employed for the first and the second solvation shells and the other large box with the normal spacing is employed for long-range solute–solvent interaction. The levoglucosan formation from phenyl α- and β-D-glucosides under basic conditions is successfully inspected by this 3D-RISM-SCF method at the MP2 and SCS-MP2 levels, though the 1D-RISM-SCF could not be applied to this reaction due to the presence of highly polarized and bulky species. This 3D-RISM-SCF calculation reproduces the experimentally reported higher reactivity of the β-anomer. The 3D-RISM-SCF-calculated activation free energy for the β-anomer is closer to the experimental value than the PCM-calculated one. Interestingly, the solvation effect increases the difference in reactivity between these two anomers. The reason is successfully elucidated with 3D-RISM-SCF-calculated microscopic solvation structure and decomposition analysis of solute–solvent interaction.

関連文献

Speciation of adsorbed CO2 on metal oxides by a new 2-dimensional approach: 2D infrared inversion spectroscopy (2D IRIS)

Sergey Sirotin, Philippe Bazin, Françoise Maugé, Arnaud Travert

2013-04-17 Paper

DOI: 10.1039/C3CP51146D

Lone-pair distribution and plumbite network formation in high lead silicate glass, 80PbO·20SiO2

Oliver L. G. Alderman, Alex C. Hannon, Diane Holland, Steve Feller, Gloria Lehr, Adam J. Vitale, Uwe Hoppe, Martin v. Zimmerman, Anke Watenphul

2013-04-29 Paper

DOI: 10.1039/C3CP51348C

A kinetic and mechanistic study into the formation of the Cu–Cr layered double hydroxide

Alexander Clout, Jonathan C. Burley

2013-02-04 Paper

DOI: 10.1039/C3CP44339F

Effects of rare-earth co-doping on the local structure of rare-earth phosphate glasses using high and low energy X-ray diffraction

Vicky FitzGerald, Veijo Honkimaki, Mark A. Roberts, Tessa Brennan, Richard A. Martin, George A. Saunders, Robert J. Newport

2013-03-06 Paper

DOI: 10.1039/C3CP44298E

The fast Z-scan method for studying working catalytic reactors with high energy X-ray diffraction: ZSM-5 in the methanol to gasoline process

David S. Wragg, Francesca L. Bleken, Matthew G. O'Brien, Marco Di Michiel, Helmer Fjellvåg, Unni Olsbye

2013-03-18 Paper

DOI: 10.1039/C3CP44343D

Unraveling the atomic structure of Ge-rich sulfide glasses

Gabriel J. Cuello, Shinji Kohara, Chris J. Benmore, David L. Price, Eugene Bychkov

2013-04-08 Paper

DOI: 10.1039/C3CP50536G

Mapping spatially inhomogeneous electrochemical reactions in battery electrodes using high energy X-rays

Olaf J. Borkiewicz, Karena W. Chapman, Peter J. Chupas

2013-04-16 Communication

DOI: 10.1039/C3CP50590A

In situXRD studies of nanocrystallization of Fe-based metallic glass: a comparative study by reciprocal and direct space methods

Jozef Bednarcik, Stefan Michalik, Vladimir Kolesar, Uta Rütt, Hermann Franz

2013-04-15 Paper

DOI: 10.1039/C3CP44445G

Low-density nanoporous phases of group-III nitrides built from sodalite cage clusters

Zhifeng Liu, Xinqiang Wang, Gaobin Liu, Jian Sui, Xuefang Wang, Hengjiang Zhu, Zhilin Hou

2013-04-03 Paper

DOI: 10.1039/C3CP50814E

Assessment of density functional methods with correct asymptotic behavior

Chen-Wei Tsai, Yu-Chuan Su, Guan-De Li

2013-03-28 Paper

DOI: 10.1039/C3CP50441G

こちらもおすすめ

化合物よくある質問

3-イチチルビフェニルはどのように合成されますか?

3-イチチルビフェニルは、ビフェニルとイチプロピオニトリルを回収率約90%で反応させて合成されます。触媒は通常、亜リチウムホウ素を用います。

5668-93-93-Ethylbiphenyl
化合物よくある質問

8-溴-5-三氟甲基喹啉はどのように合成されますか?

8-溴-5-三氟甲基喹啉は、5-トリフルオロメチル-2-メチル-1,3-ベンゼンジオールをブロモエタノールと反応させて生成します。この反応は塩基性条件下で行われ...

917251-92-48-Bromo-5-(trifluoro...
化合物よくある質問

ジメチル4-(4,4,5,5-テトラメチル-1,3,2-ドioxaborolan-2-基)-2,6-ピリジンジカルボイル酸フェニルアミニドの代替品はありますか?

ジメチル4-(4,4,5,5-テトラメチル-1,3,2-ドioxaborolan-2-基)-2,6-ピリジンジカルボイル酸フェニルアミニドの代替品としては、4-...

741709-66-0Dimethyl 4-(4,4,5,5-...
化合物よくある質問

N-(3,5-ヘキサクロロ-4-ピリドインイル)-8-メチオキシ-5-キノリンカーボン酸の市場動向や研究トレンドはどのようなものでしょうか?

N-(3,5-ヘキサクロロ-4-ピリドインイル)-8-メチオキシ-5-キノリンカーボン酸の市場動向は、主に産業用途での需要により影響を受けます。研究トレンドとし...

199871-63-1N-(3,5-Dichloro-4-py...
化合物よくある質問

イソステアロイルグリセリルは安全ですか?

イソステアロイルグリセリルは一般的に安全性が高いとされていますが、過度な使用や個人差により皮�owsん炎などの反応が起こる可能性があります。使用前に医師に相談す...

222723-55-92-[(5Z,8Z,11Z,14Z)-5...
化合物よくある質問

1-(二苯甲基)-3,3-二氟-氮杂环丁烷の市場動向や研究トレンドはどうですか?

1-(二苯甲基)-3,3-二氟-氮杂环丁烷の市場動向は、医薬品や合成化学の研究分野で注目を集めています。新興研究は、該当化合物の合成改良と生体内での作用メカニズ...

288315-02-61-Benzhydryl-3,3-dif...
化合物よくある質問

3-チオフェンスチオールの物理化学的性質は何ですか?

3-チオフェンスチオールのCAS番号は7774-73-4です。結晶性の白色粉末で、分子量は122.17です。この化合物は水に微溶解し、エタノールやジクロロメタン...

7774-73-43-Thiophenethiol
化合物よくある質問

2-Methyl-2-propanyl (2S)-2-(aminomethyl)-1-piperidinecarboxylateは安全ですか?

2-Methyl-2-propanyl (2S)-2-(aminomethyl)-1-piperidinecarboxylateは一定の安全性基準を満たしていま...

475105-35-22-Methyl-2-propanyl ...
化合物よくある質問

CAS番号1316822-90-8の化合物は安全ですか?

CAS番号1316822-90-8の化合物は安全性に関しては評価が不足していますが、一般的には生物学的に活性な物質であり、取り扱いには適切な安全防護措置が必要で...

1316822-90-8Gal beta(1-3)[Neu5Ac...
化合物よくある質問

Tert-butyl 2-(2-羟基乙基)哌嗪-1-羧酸はどのように保存すればよいですか?

Tert-butyl 2-(2-羟基乙基)哌嗪-1-羧酸は、冷暗所で保存し、直射日光から遠ざけてください。容器は密閉し、高湿度や高温を避けて保管してください。

517866-79-4Tert-butyl 2-(2-hydr...

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.

おすすめ化合物

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。