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Remarkable enhancement in failure stress and strain of penta-graphene via chemical functionalization
Authors:Yingyan Zhang  Qingxiang Pei  Zhendong Sha  Yongwei Zhang  Huajian Gao
Affiliation:1. School of Computing, Engineering and Mathematics, Western Sydney University, Penrith, NSW2751, Australia;2. Institute of High Performance Computing, A*STAR, Singapore 138632, Singapore;3. International Center for Applied Mechanics, State Key Laboratory for Strength and Vibration of Mechanical Structures, Xi'an Jiaotong University, Xi'an 710049, China;4. School of Engineering, Brown University, Providence, Rhode Island 02912, USA
Abstract:Penta-graphene (PG),a newly proposed two-dimensional material composed entirely of carbon pentagons,is believed to possess much lower failure stress and strain than those of graphene.An open question is whether and how these properties can be enhanced.Herein using molecular dynamics simulations,we examine the deformation and failure processes of PG functionalized with different functional groups.We reveal that complete chemical functionalization leads to remarkable increases in the failure stress and strain of PG by up to 86.6% and 82.4%,respectively.The underlying reason for this enhancement is that the buckled pentagonal rings in pristine and partially functionalized PGs can easily transform into planar polygon rings under stretching;in contrast,complete functionalization of PG strongly stabilizes its structure and prevents such transformation,thereby significantly increasing the failure stress and strain.Our findings suggest a possible route to enhance the mechanical properties of PG for potential applications in nanocomposites and nanodevices.
Keywords:penta-graphene  mechanical properties  chemical functionalization  molecular dynamics
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