{"title":"π-金属-π基序:旋转分子机械的通用设计原则。","authors":"Wenhao Li, , , Zheng Pan, , , Xinyi Tan, , , Yanoar P. Sarwono, , , Mingzhan Wang, , and , Rundong Zhao*, ","doi":"10.1021/acs.jpca.5c05871","DOIUrl":null,"url":null,"abstract":"<p >Based on the 18-valence-electron rule, we demonstrate that group 6–8 transition metals (e.g., M = Cr, Mn, Fe) can act as single-atom adhesives to link diverse π-conjugated carbon nanostructures. The resulting π-metal-π (π-M-π) sandwich configurations transform weak van der Waals (vdW) interactions into robust covalent bonds, while uniquely preserving rotational freedom between parallel π planes. This dual feature─strong anchoring with intrinsic rotational freedom─makes the π-M-π motif an ideal structural unit for constructing nanoscale mechanical devices such as rotors, gears, and nanovehicles. Using first-principles calculations, we first establish the correlation between electronic configuration and bonding stability in a series of M(C<sub>6</sub>H<sub>6</sub>)<sub>2</sub> complexes, validating the adhesive behavior via the 18-electron principle. We then extend this strategy to larger π-systems, including graphene, fullerenes, and carbon nanotubes, confirming stable binding and low rotational barriers. Finally, we design and simulate two interesting classes of molecular machines: an electric-field-driven motor that transmits torque to an adjacent gear, and a bevel gear system built on carbon nanotubes that enables out-of-plane rotational coupling. These results establish the π-M-π motif as a chemically realistic and functionally versatile design unit. While this work exemplifies its utility in constructing molecular gear assemblies, the underlying concept of a modular, metal-bridged π–π linkage offers broader implications in nanoscience, supramolecular chemistry, and advanced materials design.</p>","PeriodicalId":59,"journal":{"name":"The Journal of Physical Chemistry A","volume":"129 42","pages":"9840–9850"},"PeriodicalIF":2.8000,"publicationDate":"2025-10-11","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"The π-Metal-π Motif: A Versatile Design Principle for Rotational Molecular Machines\",\"authors\":\"Wenhao Li, , , Zheng Pan, , , Xinyi Tan, , , Yanoar P. 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We then extend this strategy to larger π-systems, including graphene, fullerenes, and carbon nanotubes, confirming stable binding and low rotational barriers. Finally, we design and simulate two interesting classes of molecular machines: an electric-field-driven motor that transmits torque to an adjacent gear, and a bevel gear system built on carbon nanotubes that enables out-of-plane rotational coupling. These results establish the π-M-π motif as a chemically realistic and functionally versatile design unit. 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引用次数: 0
摘要
基于18价电子规则,我们证明了6-8族过渡金属(如M = Cr, Mn, Fe)可以作为单原子粘合剂连接各种π共轭碳纳米结构。由此产生的π-金属-π (π- m -π)夹层构型将弱范德华(vdW)相互作用转化为坚固的共价键,同时独特地保持了平行π平面之间的旋转自由。π-M-π基序具有很强的锚定性和固有的旋转自由度,这一双重特性使π-M-π基序成为构建纳米级机械装置(如转子、齿轮和纳米车辆)的理想结构单元。利用第一性原理计算,我们首先建立了一系列M(C6H6)2配合物的电子构型与成键稳定性之间的关系,并通过18电子原理验证了其粘附行为。然后,我们将该策略扩展到更大的π体系,包括石墨烯,富勒烯和碳纳米管,证实了稳定的结合和低旋转势垒。最后,我们设计并模拟了两种有趣的分子机器:一种是电场驱动的电机,它将扭矩传递给相邻的齿轮,另一种是基于碳纳米管的锥齿轮系统,它可以实现面外旋转耦合。这些结果确立了π-M-π基序作为一个化学上真实的和功能上通用的设计单元。虽然这项工作证明了它在构建分子齿轮组件方面的实用性,但模块化、金属桥接π-π连接的潜在概念在纳米科学、超分子化学和先进材料设计方面具有更广泛的意义。
The π-Metal-π Motif: A Versatile Design Principle for Rotational Molecular Machines
Based on the 18-valence-electron rule, we demonstrate that group 6–8 transition metals (e.g., M = Cr, Mn, Fe) can act as single-atom adhesives to link diverse π-conjugated carbon nanostructures. The resulting π-metal-π (π-M-π) sandwich configurations transform weak van der Waals (vdW) interactions into robust covalent bonds, while uniquely preserving rotational freedom between parallel π planes. This dual feature─strong anchoring with intrinsic rotational freedom─makes the π-M-π motif an ideal structural unit for constructing nanoscale mechanical devices such as rotors, gears, and nanovehicles. Using first-principles calculations, we first establish the correlation between electronic configuration and bonding stability in a series of M(C6H6)2 complexes, validating the adhesive behavior via the 18-electron principle. We then extend this strategy to larger π-systems, including graphene, fullerenes, and carbon nanotubes, confirming stable binding and low rotational barriers. Finally, we design and simulate two interesting classes of molecular machines: an electric-field-driven motor that transmits torque to an adjacent gear, and a bevel gear system built on carbon nanotubes that enables out-of-plane rotational coupling. These results establish the π-M-π motif as a chemically realistic and functionally versatile design unit. While this work exemplifies its utility in constructing molecular gear assemblies, the underlying concept of a modular, metal-bridged π–π linkage offers broader implications in nanoscience, supramolecular chemistry, and advanced materials design.
期刊介绍:
The Journal of Physical Chemistry A is devoted to reporting new and original experimental and theoretical basic research of interest to physical chemists, biophysical chemists, and chemical physicists.