On the molecular and vibrational structure of 1,6,6aλ 4-trithiapentalenes. Analysis of the “ bell-clapper” asymmetrical S–S–S stretching mode
文献情報
Jens Spanget-Larsen, Kristine B. Andersen
The molecular and vibrational structure of the 1,6,6aλ4-trithiapentalene (TTP) ring system was studied by experimental and theoretical procedures. IR absorption spectra were recorded of 2,5-dimethyl-1,6,6aλ4-trithiapentalene (DMTTP) in liquid solution, in a stretched polyethylene matrix, and in solid state tablet samples. The linear dichroism observed in the stretched polymer sample provided experimental symmetry assignments of the observed vibrational states. The results of B3LYP and B3PW91 density functional theoretical calculations were in good agreement with the observed molecular geometries and vibrational transitions for TTP and DMTTP. The computed molecular structures were characterized by sulfonium ylide-like Mulliken charge distributions (positively charged, three-coordinated sulfur center in position 6a, negatively charged carbons in positions 2, 3a and 5), consistent with the large dipole moments reported for these species. Of particular interest was the strong vibrational transition observed around 187 cm−1 in the far-IR spectrum of DMTTP, similar to the transition previously observed at 153 cm−1 for TTP. These transitions must be assigned to the asymmetrical S–S–S stretching vibration, the so-called “bell-clapper” mode. According to B3LYP and B3PW91 calculations the potential is U-shaped, corresponding to a negative anharmonicity constant xe in the order of − 0.025. Anharmonic effects are predicted to increase the frequency of the fundamental transition by about 5%. Hartree–Fock (HF) theory predicts a double-minimum potential for this mode, while post-HF Møller–Plesset second-order perturbation theory (MP2) predicts a single-minimum potential with a complicated shape and a positive anharmonicity.
おすすめジャーナル

Biocatalysis and Biotransformation

Critical Reviews in Solid State and Materials Sciences

Bioorganic & Medicinal Chemistry

Journal of Asian Natural Products Research

Acta Metallurgica Sinica-English Letters

Polycyclic Aromatic Compounds

Herald of the Russian Academy of Sciences

Chinese Journal of Chemistry

NDT & E International

Atomization and Sprays
関連文献
Structural, optical and phonon properties of formate-based MOF phosphors with ethylammonium cations
M. Ptak, K. Pasińska, P. Głuchowski, A. Łukowiak, A. Ciupa
DOI: 10.1039/C7CP04005A
Enhancement in thermoelectric performance of SiGe nanoalloys dispersed with SiC nanoparticles
M. Jayasimhadri, Bhasker Gahtori, Anil Kumar, A. K. Srivastava, Ajay Dhar
DOI: 10.1039/C7CP04240J
Defluorination and covalent grafting of fluorinated graphene with TEMPO in a radical mechanism
Wenchuan Lai, Dazhou Xu, Xu Wang, Zaoming Wang, Yang Liu, Xiaojiao Zhang, Yulong Li, Xiangyang Liu
DOI: 10.1039/C7CP04439A
Mechanistic insights into the catalytic reaction of ferulic acid decarboxylase from Aspergillus niger: a QM/MM study
Ge Tian, Yongjun Liu
DOI: 10.1039/C6CP08811B
Elucidating the impact of A-site cation change on photocatalytic H2 and O2 evolution activities of perovskite-type LnTaON2 (Ln = La and Pr)
Maged F. Bekheet, Judy N. Hart, Junie Jhon M. Vequizo, Akira Yamakata, Kunio Yubuta, Aleksander Gurlo, Masashi Hasegawa, Kazunari Domen
DOI: 10.1039/C7CP03714G
Unveiling anomalous CO2-to-N2 selectivity of graphene oxide
Ji Hoon Lee, Hyeon Jeong Lee, Jang Wook Choi
DOI: 10.1039/C7CP04318J
Theoretical tuning of the singlet–triplet energy gap to achieve efficient long-wavelength thermally activated delayed fluorescence emitters: the impact of substituents
Lijuan Wang, Tao Li, Peicheng Feng, Yan Song
DOI: 10.1039/C7CP02615C
Can an ammonium-based room temperature ionic liquid counteract the urea-induced denaturation of a small peptide?
Soumadwip Ghosh, Souvik Dey, Mahendra Patel, Rajarshi Chakrabarti
DOI: 10.1039/C6CP08842B
Remote-control of the enantiomeric supramolecular recognition mediated by chiral azobenzenes bound to human serum albumin
M. Deiana, S. G. Mucha, L. M. Mazur, K. Pawlik, P. Mlynarz, M. Samoc, K. Matczyszyn
DOI: 10.1039/C7CP03336B
Deciphering the photosensitization mechanisms of hypericin towards biological membranes
DOI: 10.1039/C7CP03723F
こちらもおすすめ
「邻羟基阿托伐他汀内酯标准品」に適用される法規ガイドelinesは何ですか?
CAS番号163217-74-1の「邻羟基阿托伐他汀内酯标准品」は、GHS分類では危険物に分類されず、主にREACH規則とFDA/EPAの管理対象となります。R...
メチル(3R)-3-アミノ-2,3-ジヒドロ-1-ベンゾファンラニン-5-カルボイル酸塩塩酸塩の主な用途は何ですか?
メチル(3R)-3-アミノ-2,3-ジヒドロ-1-ベンゾファンラニン-5-カルボイル酸塩塩酸塩は、医薬品や合成化学の研究に広く用いられます。また、特定の薬物の前...
トランス-4-メチルピロリジン-3-オール塩酸塩はどのように合成されますか?
トランス-4-メチルピロリジン-3-オール塩酸塩は、4-メチルピロリジンの塩酸塩化によって合成されます。一般的な合成方法では、4-メチルピロリジンを塩酸に加えて...
硫雜環丁烷-1,1-二氧化物は安全ですか?
硫雜環丁烷-1,1-二氧化物は安全ではありません。毒性は報告されていませんが、高温下で分解し、可燃性があるため、高圧ガスは注意が必要です。密閉した容器で保管し、...
9-ヒドロキシエリプチシネ塩酸塩はどのように合成されますか?
9-ヒドロキシエリプチシネ塩酸塩は、エリプチシネから塩酸を添加することで合成されます。選択性は高いですが、収率は約70%です。
5-塩素-2-(メチルアミノ)フェニル-(2-塩素フェニル)メタン酮の物理化学的性質は何ですか?
5-塩素-2-(メチルアミノ)フェニル-(2-塩素フェニル)メタン酮のCAS番号は5621-86-3です。この化合物は白色の結晶性粉末で、分子量は415.03で...
1-[2-(4-甲氧基-苯氧基)-乙基]-哌嗪はどのように保存すればよいですか?
1-[2-(4-甲氧基-苯氧基)-乙基]-哌嗪は、直射日光を避けて暗所に、室温(15-25℃)で保管し、密閉容器に入れることで安定性を保つことができます。
2-[3-(4-甲氧基フェニル)プロピル]-4,4,5,5-四メチル-1,3,2-ドイボロロールアンの主な用途は何ですか?
2-[3-(4-甲氧基フェニル)プロピル]-4,4,5,5-四メチル-1,3,2-ドイボロロールアンは、医薬品の合成、有機合成化学、および新材料の研究で使用され...
掲載誌
Physical Chemistry Chemical Physics

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.




