New deformation-induced nanostructure in silicon
Author
Abstract
Nanostructures in silicon (Si) induced by phase transformations have been investigated during the past 50 years. Performances of nanostructures are improved compared to that of bulk counterparts. Nevertheless, the confinement and loading conditions are insufficient to machine and fabricate high-performance devices. As a consequence, nanostructures fabricated by nanoscale deformation at loading speeds of m/s have not been demonstrated yet. In this study, grinding or scratching at a speed of 40.2 m/s was performed on a custom-made setup by an especially designed diamond tip (calculated stress under the diamond tip in the order of 5.11 GPa). This leads to a novel approach for the fabrication of nanostructures by nanoscale deformation at loading speeds of m/s. A new deformation-induced nanostructure was observed by transmission electron microscopy (TEM), consisting of an amorphous phase, a new tetragonal phase, slip bands, twinning superlattices, and a single crystal. The formation mechanism of the new phase was elucidated by ab initio simulations at shear stress of about 2.16 GPa. This approach opens a new route for the fabrication of nanostructures by nanoscale deformation at speeds of m/s. Our findings provide new insights for potential applications in transistors, integrated circuits, diodes, solar cells, and energy storage systems.
Patrocinador
NSFC: 51422502;
Science Fund for Creative Research Groups of NSFC: 51621064;
Changjiang Scholar Program of Chinese Ministry of Education;
Program for Creative Talents in University of Liaoning Province: LR2016006;
Distinguished Young Scholars for Science and Technology of Dalian City: 2016RJ05;
Natural Science Foundation of Jiangsu Province: BK20151190;
Xinghai Science Funds for Distinguished Young Scholars;
Thousand Youth Talents at Dalian University of Technology;
State Key Laboratory of Tribology, Tsinghua University: SKLTKF17B19;
State Key Laboratory of Metastable Materials Science and Technology, Yanshan University: 201813;
Collaborative Innovation Center of Major Machine Manufacturing in Liaoning
Indexation
Artículo de publicación ISI
Identifier
URI: https://repositorio.uchile.cl/handle/2250/153400
DOI: 10.1021/acs.nanolett.8b01910
ISSN: 1530-6984
Quote Item
Nano Letters, 2018, 18(7), 4611−4617.
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