4.8 Article

Reduced Graphene Oxide Nanosheets Decorated with Copper and Silver Nanoparticles for Achieving Superior Strength and Ductility in Titanium Composites

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 13, 期 36, 页码 43197-43208

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c08899

关键词

titanium matrix composites; mechanical properties; reduced graphene oxides; strength mechanism; metal nanoparticles

资金

  1. National Natural Science Foundation of China [51901192]
  2. Shaanxi Science Foundation For Distinguished Young Scholars [2020JC-50]
  3. Key Research and Development Projects of Shaanxi Province [2019GY-164, 2021GY-214, 2021SF-296]
  4. Science and Technology Project of Weiyang District of Xi'an City [201857, 202008]
  5. Shaanxi Youth Star Program of Science and Technology [2020KJXX-061]
  6. International Exchange Grant, through the Royal Society, UK [IEC/NSFC/201078]
  7. National Natural Science Foundation of China

向作者/读者索取更多资源

This study introduces a method to fabricate titanium matrix composites with significantly enhanced mechanical properties using reduced graphene oxide nanosheets decorated with copper or silver nanopowders. The outstanding mechanical properties of AgprGO/Ti and CuprGO/Ti composites are attributed to the effective load transfer of in-situ formed TiC nanoparticles and the formation of interfacial intermetallic compounds between the rGO nanosheets and Ti matrix.
Graphene and its derivates are extensively applied to enhance the mechanical properties of metal matrix nanocomposites. However, their high reactivity with a metal matrix such as titanium and thus the limited strengthening effects are major problems for achieving high-performance graphene-based nanocomposites. Herein, reduced graphene oxide nanosheets decorated with copper or silver (i.e., Cu@rGO and AgprGO) nanopowders are introduced into Ti matrix composites using multiple processes of one-step chemical coreduction, hydrothermal synthesis, low-energy ball milling, spark plasma sintering, and hot rolling. The CuprGO/Ti and AgprGO/Ti nanocomposites exhibit significantly enhanced strength with superior elongation to fracture (846 MPa-11.6 and 900 MPa-8.4%, respectively, basically reaching the level of the commercial Ti-6Al-4V titanium alloy), which are much higher than those of the fabricated Ti (670 MPa-7.0%) and rGO/Ti composites (726 MPa-11.3%). Furthermore, fracture toughness values of the MprGO/Ti composites are all significantly improved, that is, the highest K-IC value is 34.4 MPa.m (1/2) for 0.5Cu@rGO/Ti composites, which is 20.28 and 51.5% higher than those of monolithic Ti and 0.5rGO/Ti composites, respectively. The outstanding mechanical properties of AgprGO/Ti and CuprGO/Ti composites are attributed to the effective load transfer of in situ formed TiC nanoparticles and the formation of interfacial intermetallic compounds between the rGO nanosheets and Ti matrix. This study provides new insights and approach for the fabrication of metal-modified graphene/Ti composites with a high performance.

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