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Revealing the Effects of Pore Size and Geometry on the Mechanical Properties of Graphene Nanopore Using the Atomistic Finite Element Method

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摘要 Graphene nanopore has been extensively employed in nanoscale sensing devices due to its outstanding properties.The understanding of its mechanical properties at nanoscale is crucial for sensing improvement.In this work,the mechanical proper ties of graphene nanopore are t hus investigated using the atomistic finite element met hod.Four graphene models with different pore shapes(circle(CR),horizontal rec tangle(RH),vertical rec tangle(RV)and square(SQ))in sub-5nm size,which could be successfully fabricated experimentally,have been studied here.The force normal to a pore rim is applied to mimic the impact force due to a fluid flow.As expected,the strength of nanoholed graphene is pore size dependent.Increasing pore size results in the reduction in its str ength.Comparing bet ween different pore shapes with comparable sizes,the order of pore st rength is CR>RH>RV>SQ.In addition,two different corner st rue tu res(V-like or zigzag and C-like or armchair corners)are observed,where the V-like st rue ture causes higher tensile stress.Besides,we find that the highest tensile stress is produced at the corner in all cases.This finding suggests the corners as an origin of pore fracture.The results of RH and RV highlight the impact of a direction of pore orientation on mechanical properties.Aligning a long side of a pore along the zigzag direction gains more tensile stress,while aligning on an armchair side causes a deflection.Not only the pore geometry and size,but also the pore orientation is crucial for defining the mechanical properties of nanopores.
出处 《Acta Mechanica Solida Sinica》 SCIE EI CSCD 2019年第1期81-92,共12页 固体力学学报(英文版)
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