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Shuttling mechanism the bistable rotaxane based on the radical interaction by quantum chemical calculations

  • WANG Tao ,
  • LI Xiaoyi
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  • Center of Materials Science and Optoelectronics Engineering, College of Materials Science and Opto-Electronic Technology, University of Chinese Academy of Sciences, Beijing 100049, China

Received date: 2022-04-14

  Revised date: 2022-05-10

  Online published: 2022-05-10

Abstract

We designed a switchable bistable rotaxane consisted of the cyclobis (paraquat-p-phenylene) bisradical dicationic (CBPQT2(·+)) ring and a main chain, concluding the recognition sites 4,4'-bipyridinium radical cationic (BIPY·+) and 2,6-dioxynaphthalen(DOP). The density functional theory (DFT) was used to analyze the motion mechanism of ring along the main chain A. Quantum mechanics calculations were used to analyze the noncovalent interaction between the CBPQT2(·+) ring and the two recognition sites. It proves that the generation and dissociation of the trisradical tricationic complex controlled by the redox reaction could drive the reciprocating motion of the CBPQT2(·+) ring along the main chain between the two recognition sites.

Cite this article

WANG Tao , LI Xiaoyi . Shuttling mechanism the bistable rotaxane based on the radical interaction by quantum chemical calculations[J]. Journal of University of Chinese Academy of Sciences, 2024 , 41(3) : 427 -431 . DOI: 10.7523/j.ucas.2022.055

References

[1] Stylios G K. There is plenty of room at the bottom, R.P. Feynman[J]. International Journal of Clothing Science and Technology, 2013, 25(5). DOI:10.1108/ijcst-06-2013-0067.
[2] Martínez-Díaz M V, Spencer N, Stoddart J F. The self-assembly of a switchable
[2] rotaxane[J]. Angewandte Chemie International Edition in English, 1997, 36(17): 1904-1907. DOI:10.1002/anie.199719041.
[3] Guterres M F A N, Ronconi C M. Artificial molecular machines[J]. Revista Virtual De Química, 2009, 1(2): 104-116. DOI:10.5935/1984-6835.20090013.
[4] Yu G C, Yung B C, Zhou Z J, et al. Artificial molecular machines in nanotheranostics[J]. ACS Nano, 2018, 12(1): 7-12. DOI:10.1021/acsnano.7b07851.
[5] Koumura N, Zijlstra R W J, van Delden R A, et al. Light-driven monodirectional molecular rotor[J]. Nature, 1999, 401(6749): 152-155. DOI:10.1038/43646.
[6] Collins B S L, Kistemaker J C M, Otten E, et al. A chemically powered unidirectional rotary molecular motor based on a palladium redox cycle[J]. Nature Chemistry, 2016, 8(9): 860-866. DOI:10.1038/nchem.2543.
[7] Gilissen P J, White P B, Berrocal J A, et al. Molecular motor-functionalized porphyrin macrocycles[J]. Nature Communications, 2020, 11: 5291. DOI:10.1038/s41467-020-19123-y.
[8] Stoddart J F. Cyclodextrins, off-the-shelf components for the construction of mechanically interlocked molecular systems[J]. Angewandte Chemie International Edition in English, 1992, 31(7): 846-848. DOI:10.1002/anie.199208461.
[9] Anelli P L, Ashton P R, Ballardini R, et al. Molecular meccano. 1.
[2] rotaxanes and a
[2] catenane made to order[J]. Journal of the American Chemical Society, 1992, 114(1): 193-218. DOI:10.1021/ja00027a027.
[10] Liu Z C, Nalluri S K M, Stoddart J F. Surveying macrocyclic chemistry: from flexible crown ethers to rigid cyclophanes[J]. Chemical Society Reviews, 2017, 46(9): 2459-2478. DOI:10.1039/c7cs00185a.
[11] Cai K, Shi Y, Zhuang G W, et al. Molecular-pump-enabled synthesis of a daisy chain polymer[J]. Journal of the American Chemical Society, 2020, 142(23): 10308-10313. DOI:10.1021/jacs.0c04029.
[12] 杨再文, 刘向荣, 赵顺省, 等. 化学驱动的
[2] 轮烷型分子梭[J]. 化学进展, 2014, 26(12): 1899-1913. DOI:10.7536/PC140801.
[13] Yu G C, Jie K C, Huang F H. Supramolecular amphiphiles based on host-guest molecular recognition motifs[J]. Chemical Reviews, 2015, 115(15): 7240-7303. DOI:10.1021/cr5005315.
[14] Jiao Y, ?orđević L, Mao H C, et al. A donor-acceptor
[2] catenane for visible light photocatalysis[J]. Journal of the American Chemical Society, 2021, 143(21): 8000-8010. DOI:10.1021/jacs.1c01493.
[15] Bajwa S Z, Lieberzeit P A. Recognition principle of Cu2+-imprinted polymers: assessing interactions by combined spectroscopic and mass-sensitive measurements[J]. Sensors and Actuators B: Chemical, 2015, 207: 976-980. DOI:10.1016/j.snb.2014.07.066.
[16] Li S G, Jia C D, Wu B, et al. A triple anion helicate assembled from a bis(biurea) ligand and phosphate ions[J]. Angewandte Chemie International Edition, 2011, 123(25): 5839-5842. DOI:10.1002/ange.201180593.
[17] Cheng C Y, Cheng T, Xiao H, et al. Influence of constitution and charge on radical pairing interactions in tris-radical tricationic complexes[J]. Journal of the American Chemical Society, 2016, 138(26): 8288-8300. DOI:10.1021/jacs.6b04343.
[18] Stephens P J, Devlin F J, Chabalowski C F, et al. Ab initio calculation of vibrational absorption and circular dichroism spectra using density functional force fields[J]. The Journal of Physical Chemistry, 1994, 98(45): 11623-11627. DOI:10.1021/j100096a001.
[19] Frisch M J, Pople J A, Binkley J S. Self-consistent molecular orbital methods 25. Supplementary functions for Gaussian basis sets[J]. The Journal of Chemical Physics, 1984, 80(7): 3265-3269. DOI:10.1063/1.447079.
[20] Hratchian H P, Schlegel H B. Using hessian updating to increase the efficiency of a hessian based predictor-corrector reaction path following method[J]. Journal of Chemical Theory and Computation, 2005, 1(1): 61-69. DOI:10.1021/ct0499783.
[21] Lu T, Chen F W. Multiwfn: a multifunctional wavefunction analyzer[J]. Journal of Computational Chemistry, 2012, 33(5): 580-592. DOI:10.1002/jcc.22885.
[22] Lu T, Chen Q X. Interaction region indicator: A simple real space function clearly revealing both chemical bonds and weak interactions[J]. Chemistry - Methods, 2021, 1(5): 231-239. DOI:10.1002/cmtd.202100007.
[23] Lu T, Liu Z Y, Chen Q X. Comment on “18 and 12-Member carbon rings (cyclo[n]carbons)-A density functional study”[J]. Materials Science and Engineering: B, 2021, 273: 115425. DOI:10.1016/j.mseb.2021.115425.
[24] Kim H, Goddard W A 3rd, Jang S S, et al. Free energy barrier for molecular motions in bistable
[2] rotaxane molecular electronic devices[J]. The Journal of Physical Chemistry. A, 2009, 113(10): 2136-2143. DOI:10.1021/jp809213m.
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