Literature DB >> 36134345

Rotaxane nanomachines in future molecular electronics.

Peiqiao Wu1, Bhushan Dharmadhikari2, Prabir Patra3, Xingguo Xiong4.   

Abstract

As the electronics industry is integrating more and more new molecules to utilize them in logic circuits and memories to achieve ultra-high efficiency and device density, many organic structures emerged as promising candidates either in conjunction with or as an alternative to conventional semiconducting materials such as but not limited to silicon. Owing to rotaxane's mechanically interlocked molecular structure consisting of a dumbbell-shaped molecule threaded through a macrocycle, they could be excellent nanomachines in molecular switches and memory applications. As a nanomachine, the macrocycle of rotaxane can move reversibly between two stations along its axis under external stimuli, resulting in two stable molecular configurations known as "ON" and "OFF" states of the controllable switch with distinct resistance. There are excellent reports on rotaxane's structure, properties, and function relationship and its application to molecular electronics (Ogino, et al., 1984; Wu, et al., 1991; Bissell, et al., 1994; Collier, et al., 1999; Pease, et al., 2001; Chen, et al., 2003; Green, et al., 2007; Jia, et al., 2016). This comprehensive review summarizes [2]rotaxane and its application to molecular electronics. This review sorts the major research work into a multi-level pyramid structure and presents the challenges of [2]rotaxane's application to molecular electronics at three levels in developing molecular circuits and systems. First, we investigate [2]rotaxane's electrical characteristics with different driving methods and discuss the design considerations and roles based on voltage-driven [2]rotaxane switches that promise the best performance and compatibility with existing solid-state circuits. Second, we examine the solutions for integrating [2]rotaxane molecules into circuits and the limitations learned from these devices keep [2]rotaxane active as a molecular switch. Finally, applying a sandwiched crossbar structure and architecture to [2]rotaxane circuits reduces the fabrication difficulty and extends the possibility of reprogrammable [2]rotaxane arrays, especially at a system level, which eventually promotes the further realization of [2]rotaxane circuits. This journal is © The Royal Society of Chemistry.

Entities:  

Year:  2022        PMID: 36134345      PMCID: PMC9400518          DOI: 10.1039/d2na00057a

Source DB:  PubMed          Journal:  Nanoscale Adv        ISSN: 2516-0230


  105 in total

1.  Reversible, erasable, and rewritable nanorecording on an H2 rotaxane thin film.

Authors:  Min Feng; Li Gao; Zhitao Deng; Wei Ji; Xuefeng Guo; Shixuan Du; Dongxia Shi; Deqing Zhang; Daoben Zhu; Hongjun Gao
Journal:  J Am Chem Soc       Date:  2007-02-02       Impact factor: 15.419

2.  Spiers Memorial Lecture. Molecular mechanics and molecular electronics.

Authors:  Robert Beckman; Kris Beverly; Akram Boukai; Yuri Bunimovich; Jang Wook Choi; Erica DeIonno; Johnny Green; Ezekiel Johnston-Halperin; Yi Luo; Bonnie Sheriff; Fraser Stoddart; James R Heath
Journal:  Faraday Discuss       Date:  2006       Impact factor: 4.008

3.  Temperature-dependent and friction-controlled electrochemically induced shuttling along molecular strings associated with electrodes.

Authors:  Eugenii Katz; Ronan Baron; Itamar Willner; Noa Richke; R D Levine
Journal:  Chemphyschem       Date:  2005-10-14       Impact factor: 3.102

4.  A fluorescent bistable [2]rotaxane molecular switch on SiO₂ nanoparticles.

Authors:  Zhan-Qi Cao; Qi Miao; Qi Zhang; Hong Li; Da-Hui Qu; He Tian
Journal:  Chem Commun (Camb)       Date:  2015-03-25       Impact factor: 6.222

5.  Type III-C rotaxane dendrimers: synthesis, dual size modulation and in vivo evaluation.

Authors:  Chak-Shing Kwan; Tao Wang; Min Li; Albert S C Chan; Zongwei Cai; Ken Cham-Fai Leung
Journal:  Chem Commun (Camb)       Date:  2019-10-23       Impact factor: 6.222

6.  Structures and properties of self-assembled monolayers of bistable [2]rotaxanes on Au (111) surfaces from molecular dynamics simulations validated with experiment.

Authors:  Seung Soon Jang; Yun Hee Jang; Yong-Hoon Kim; William A Goddard; Amar H Flood; Bo W Laursen; Hsian-Rong Tseng; J Fraser Stoddart; Jan O Jeppesen; Jang Wook Choi; David W Steuerman; Erica Deionno; James R Heath
Journal:  J Am Chem Soc       Date:  2005-02-09       Impact factor: 15.419

7.  Rotaxane-based molecular muscles.

Authors:  Carson J Bruns; J Fraser Stoddart
Journal:  Acc Chem Res       Date:  2014-05-30       Impact factor: 22.384

8.  The true nature of rotary movements in rotaxanes.

Authors:  Peng Liu; Xueguang Shao; Christophe Chipot; Wensheng Cai
Journal:  Chem Sci       Date:  2015-10-13       Impact factor: 9.825

9.  A piston-rotaxane with two potential stripes: force transitions and yield stresses.

Authors:  Edith M Sevick; David R M Williams
Journal:  Molecules       Date:  2013-10-30       Impact factor: 4.411

10.  Pb2+-Containing Metal-Organic Rotaxane Frameworks (MORFs).

Authors:  Ting Xia; Zhi-Yong Yu; Han-Yuan Gong
Journal:  Molecules       Date:  2021-07-13       Impact factor: 4.411

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