CHINESE JOURNAL OF COMPUTATIONAL PHYSICS ›› 2018, Vol. 35 ›› Issue (2): 221-229.DOI: 10.19596/j.cnki.1001-246x.7631
Previous Articles Next Articles
LIN Yan, LIU Yun, PENG Qingwei, WEI Xiaonan, TANG Yanlin
Received:
2017-01-22
Revised:
2017-05-19
Online:
2018-03-25
Published:
2018-03-25
CLC Number:
LIN Yan, LIU Yun, PENG Qingwei, WEI Xiaonan, TANG Yanlin. Calculation of Structural Parameters and Frontier Orbital of Cucurbituril (5-10) with Density Functional Theory[J]. CHINESE JOURNAL OF COMPUTATIONAL PHYSICS, 2018, 35(2): 221-229.
Add to citation manager EndNote|Ris|BibTeX
URL: http://www.cjcp.org.cn/EN/10.19596/j.cnki.1001-246x.7631
[1] CONG H, LI Z J, WANG Y H, et al. Substituent effect of substrates on cucurbit [8] uril-catalytic oxidation of aryl alcohols[J]. Journal of Molecular Catalysis A:Chemical, 2013, 374-375(11):32-38. [2] JIANG S, LIU M, CUI Y, et al. Formation and rupture of a supramolecular nanocapsule triggered on-off-on supramolecular switch for Zn2+[J]. European Journal of Organic Chemistry, 2013, 2013(13):2591-2596. [3] PENNAKALATHIL J, JAHJA E, ÖZDEMIR E S, et al. Red emitting, cucurbituril-capped, pH-responsive conjugated oligomer-based nanoparticles for drug delivery and cellular imaging[J]. Biomacromolecules, 2014, 15(9):3366-3374. [4] ZHU X, FAN X, JU G, et al. A facile method to immobilize cucurbituril on surfaces through photocrosslinking with azido groups[J]. Chemical Communications, 2013, 49(73):8093-8098. [5] BEHREND R, MEYER E, RUSCHE F I. Ueber condensationsproducte aus glycoluril und formaldehyd[J]. Justus Liebigs Annalen der Chemie, 1905, 339(1):1-37. [6] FREEMAN W A, MOCK W L, SHIH N Y. Cucurbituril[J]. Journal of the American Chemical Society, 1981, 103(24):7367-7368. [7] AAV R, SHMATOVA E, REILE I, et al. New chiral cyclohexylhemicucurbit [6] uril[J]. Organic Letters, 2013, 15(14):3786-3795. [8] CHENG X J, LIANG L L, CHEN K, et al. Twisted cucurbit [14] uril[J]. Angewandte Chemie International Edition, 2013, 52(28):7252-7255. [9] ZHOU L, ZOU C, WANG M, et al. Solubility of hydroxyl cucurbit [6] uril in different binary solvents[J]. Journal of Chemical & Engineering Data, 2014, 59(9):2879-2884. [10] ZHOU J J, YU X, ZHAO Y C, et al. Synthesis of a symmetrical octamethyl-substituted cucurbituril with a dimethyl-substituted glycoluril dimer[J]. Tetrahedron, 2014, 70(4):800-804. [11] PREMKUMAR T, GECKELER K E. Synthesis of honeycomb-like palladium nanostructures by using cucurbit [7] uril and their catalytic activities for reduction of 4-nitrophenol[J]. Materials Chemistry & Physics, 2014, 148(3):772-777. [12] WANG Y, LI D, WANG H, et al. pH responsive supramolecular prodrug micelles based on cucurbit [8] uril for intracellular drug delivery[J]. Chemical Communications, 2014, 50(66):9390-9392. [13] PENG L, FENG A, HUO M, et al. Ferrocene-based supramolecular structures and their applications in electrochemical responsive systems[J]. Chemical Communications, 2014, 50(86):13005-13014. [14] SUNDARARAJAN M. Designing novel nanomaterials through functionalization of carbon nanotubes with supramolecules for application in nuclear waste management[J]. Separation Science and Technology, 2013, 48(16):2391-2396. [15] PINJARI R V, KHEDKAR J K, GEJJI S P. Cavity diameter and height of cyclodextrins and cucurbit[n] urils from the molecular electrostatic potential topography[J]. Journal of Inclusion Phenomena and Macrocyclic Chemistry, 2010, 66(3-4):371-380. [16] GOBRE V V, PINJARI R V, GEJJI S P. Density functional investigations on the charge distribution, vibrational spectra, and NMR chemical shifts in cucurbit[n] uril (n=5-12) hosts[J]. The Journal of Physical Chemistry A, 2010, 114(12):4464-4470. [17] PINJARI R V, GEJJI S P. Electronic structure, molecular electrostatic potential, and NMR chemical shifts in cucurbit[n] urils (n=5-8), ferrocene, and their complexes[J]. The Journal of Physical Chemistry A, 2008, 112(49):12679-12686. [18] DAY A I, BLANCH R J, ARNOLD A P, et al. A cucurbituril-based gyroscane:A new supramolecular form[J]. Angewandte Chemie International Edition, 2002, 41(2):275-277. [19] KIM K, SELVAPALAM N, KO Y H, et al. Functionalized cucurbiturils and their applications[J]. Chemical Society Reviews, 2007, 36(2):267-279. [20] GROSS E K U, KOHN W. Time-dependent density-functional theory[J]. Advances in Quantum Chemistry, 1990, 21:255-291. [21] DREUW A, HEAD-GORDON M. Single-reference ab initio methods for the calculation of excited states of large molecules[J]. Chemical Reviews, 2005, 105(11):4009-4037. [22] HUANG Y, ZHONG A, RONG C, et al. Structure, spectroscopy, and reactivity properties of porphyrin pincers:A conceptual density functional theory and time-dependent density functional theory study[J]. The Journal of Physical Chemistry A, 2008, 112(2):305-311. [23] BECKE A D. Density-functional thermochemistry. Ⅲ. The role of exact exchange[J]. The Journal of Chemical Physics, 1993, 98(7):5648-5652. [24] LEE C, YANG W, PARR R G. Development of the colle-salvetti correlation-energy formula into a functional of the electron density[J]. Physical Review B:Condensed Matter, 1988, 37(2):785-789. [25] ZHANG X R, KANG Z L, LI Y. Structure and electronic properties of WnC0,±(n=1,…,6) clusters[J]. Chinese Journal of Computational Physics, 2011, 28(4):598-604. [26] CHEN Y H, WANG W C, DU R et al. Structure and property of(K3N)n(n=1,…,5) clusters:A density functional study[J]. Chinese Journal of Computational Physics, 2011, 28(5):773-780. [27] HU W J, YANG H, MENG X M, et al. Stable structures of binary molecular cluster of NH3(H2O)4[J]. Chinese Journal of Computational Physics, 2010, 27(5):765-770. [28] GUO W L, RAO Q, ZHANG X R. Theoretical study on electronic structure and vibrational spectrum of PtIr0,±n(n=1-5) clusters[J]. Chinese Journal of Computational Physics, 2012, 29(6):921-930. [29] TIAN L, CHEN F W. Multiwfn:A multifunctional wavefunction analyzer[J]. J Comp Chem, 2012,33(5):580-592. [30] ZHONG A G, HUANG L, LI B L, et al. Structure, spectroscopy and reactivity properties of helically chiral metal (Ⅱ)-bisdipyrrin complexes[J]. Acta Physico-Chimica Sinica, 2010, 26(10):2763-2771. [31] CHERMETTE H. Chemical reactivity indexes in density functional theory[J]. Journal of Computational Chemistry, 1999, 20(1):129-154. [32] 钟爱国, 李柏林, 等. 三聚氰胺对金属(Ⅱ)卟啉反应活性影响的概念密度泛函研究[J]. 分子科学学报:中英文版, 2010, 26(3):213-218. [33] 钟爱国, 吴俊勇, 等. 三聚氰胺金属(Ⅱ)配合物的结构、紫外-可见光谱和反应活性[J]. 物理化学学报, 2009, 25(7):1367-1372. [34] 安梅梅, 李晓东. 苯并三氮唑(BTA)在青铜文物缓蚀中的反应活性探讨[J]. 分子科学学报:中英文版, 2012, 28(006):462-467. [35] 张瑞勤, 步宇翔, 等. 一种选择从头算基函数的有效方法[J]. 中国科学:B辑, 2000, 30:417-427. [36] http://www.sobereva.com/336 [37] PICHIERRI F. Density functional study of cucurbituril and its sulfur analogue[J]. Chemical Physics Letters, 2004, 390(1):214-219. [38] SOKOLOV M N, VIROVETS A V, DYBTSEV D N, et al. Metal incorporation into and dimerization of M3E4, clusters (M=Mo, W; E=S, Se) in supramolecular assemblies with cucurbituril:A molecular model of intercalation[J]. Angewandte Chemie International Edition, 2000, 39(9):1659-1661. [39] DAY A I, BLANCH R J, ARNOLD A P, et al. A cucurbituril-based gyroscane:A new supramolecular form[J]. Angewandte Chemie International Edition, 2002, 41(2):275-277. [40] HUANG Y, HU Q H, SONG G X, et al. Cucurbit[7,8] urils binding to gefitinib and the effect of complex formation on the solubility and dissolution rate of the drug[J]. Rsc Advances, 2014, 4(7):3348. [41] FUKUI K. Theory of orientation and stereoselection[M]//Orientation and Stereoselection. Springer Berlin Heidelberg, 1970:1-85. [42] LIU S, GOVIND N. Toward understanding the nature of internal rotation barriers with a new energy partition scheme:Ethane and n-butane[J]. Journal of Physical Chemistry A, 2008, 112(29):6690-6699. [43] CHENG M, PU X, WONG N B, et al. Substituent effects on the hydrogen-bonded complex of aniline-H2O:A computational study[J]. New Journal of Chemistry, 2008, 32(6):1060-1070. [44] XIA Y, YIN D, RONG C, et al. Impact of lewis acids on diels-alder reaction reactivity:A conceptual density functional theory study[J]. The Journal of Physical Chemistry A, 2008, 112(40):9970-9977. [45] RONG C, LIAN S, YIN D, et al. Effective simulation of biological systems:Choice of density functional and basis set for heme-containing complexes[J]. Chemical Physics Letters, 2007, 434(1):149-154. |
[1] | Hongfei ZHAN, Zhenning CAI, Guanghui HU. Wigner Ground State Calculation Based on Imaginary Time Propagation Method and Spectral Method [J]. Chinese Journal of Computational Physics, 2022, 39(6): 651-665. |
[2] | Wumaierjiang NAIPISAI, Haokui YAN, Abulimiti BUMALIYA, Danqi WANG, Mei XIANG, Huan AN. Spectrum and Dissociation Characteristics of CHBr3 Molecule Under External Electric Fields [J]. Chinese Journal of Computational Physics, 2022, 39(5): 624-630. |
[3] | Hang JI, Zhongmou SUN, Zhuoyan ZHOU, Yuzhu LIU. Modulation and Degradation of CO Molecular and Ionic Properties with External Electric Field [J]. Chinese Journal of Computational Physics, 2022, 39(3): 327-334. |
[4] | Hui GAO, Zaifa YANG, Jingfen ZHAO, Huimin YUAN, Zhie LIU, Xian ZHAO. Effect of Nb, Sn, Cu, Fe and Cr on Zr (0001) Surface Nodular Corrosion Resistance: First Principles Study [J]. Chinese Journal of Computational Physics, 2022, 39(1): 101-108. |
[5] | CHAI Rukuan, LIU Yuetian, YANG Li, ZHANG Yixin, XIN Jing, MA Jing. Adsorption Mechanism of Two Organic Molecules with Different Polarities on Calcite (104) Surface: Density Functional Theory Study [J]. CHINESE JOURNAL OF COMPUTATIONAL PHYSICS, 2020, 37(2): 221-230. |
[6] | CHEN Yu, XING Yongming. Effect of Hydrostatic Pressure on Magneto-optical Properties of Al14Mn2P16: A Density Functional Theory Study [J]. CHINESE JOURNAL OF COMPUTATIONAL PHYSICS, 2020, 37(2): 231-239. |
[7] | YIN Haifeng, ZENG Chunhua, CHEN Wenjing. Plasmon Excitations in Two-dimensional Binary Silicon Carbide Nanostructures [J]. CHINESE JOURNAL OF COMPUTATIONAL PHYSICS, 2019, 36(5): 603-609. |
[8] | HE Zhiwei, ZHANG Xiurong. Structure and Properties of (BN)25 Clusters [J]. CHINESE JOURNAL OF COMPUTATIONAL PHYSICS, 2019, 36(2): 219-224. |
[9] | ZHOU Kang, FENG Qing, TIAN Yun, LI Ke, ZHOU Qingbin. Oxidizing Gas NO2 Optical Gas Sensing Characteristics of Transition Metal Cu and Cr Doped TiO2 Surfaces [J]. CHINESE JOURNAL OF COMPUTATIONAL PHYSICS, 2018, 35(6): 702-710. |
[10] | XIE Jianming, CHEN Hongxia, ZHUANG Guoce. A study on Physical Properties of Mn-Doped (ZnSe)12 Clusters [J]. CHINESE JOURNAL OF COMPUTATIONAL PHYSICS, 2018, 35(4): 481-486. |
[11] | LI Dawei, GAO Yunliang, ZHU Yuanjiang, LI Jinping. Density Functional Theory Calculations of Ga Doped δ-Pu [J]. CHINESE JOURNAL OF COMPUTATIONAL PHYSICS, 2018, 35(4): 487-493. |
[12] | CHEN Hongxia, DU Sijie, ZHUANG Guoce. Structure and magnetic properties of Ni-doped ZnO clusters [J]. CHINESE JOURNAL OF COMPUTATIONAL PHYSICS, 2018, 35(1): 112-118. |
[13] | LI Anjun, ZHU Yuanqiang, SU Hong, YANG Zehong. Mechanism of Acetylenic-Keton Intramolecular Cyclization Reaction Catalyzed by AuCl3 [J]. CHINESE JOURNAL OF COMPUTATIONAL PHYSICS, 2017, 34(6): 679-684. |
[14] | MA Hongji, ZHANG Guoying, FANG Geliang. First-Principles Study on Dehydrogenation Ability of MgH2 Hydrogen Storage Materials with Component Element Substitution [J]. CHINESE JOURNAL OF COMPUTATIONAL PHYSICS, 2017, 34(6): 705-712. |
[15] | LIU Tao, YANG Ziyi, ZHOU Hongwu, NING Jianghua, GAO Tao. Structural and Electronic Properties of Nonconventional Superconductor PuCoGa5:Density Functional Study [J]. CHINESE JOURNAL OF COMPUTATIONAL PHYSICS, 2017, 34(5): 626-630. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||
Copyright © Chinese Journal of Computational Physics
E-mail: jswl@iapcm.ac.cn
Supported by Beijing Magtech Co., Ltd.