Literature DB >> 34278775

3D-Printed Topological MoS2/MoSe2 Heterostructures for Macroscale Superlubricity.

Yu Zhao1, Hui Mei1, Peng Chang1, Yubo Yang1, Weifeng Huang2, Ying Liu2, Laifei Cheng1, Litong Zhang1.   

Abstract

Superlubricity is a fascinating phenomenon which attracts people to continuously expand ultralow friction and wear from microscale to macroscale. Despite the impressive advances in this field, it is still limited to specific materials and extreme operating conditions. Introducing a heterostructure with intrinsic lattice mismatch into delicate topologies mimicked from nature provides a promising alternative toward macroscopic superlubricity. Herein, 3D-printed MoS2/MoSe2 heterostructures with bioinspired circular-cored square/hexagonal honeycomb topologies were developed. Compared to 3D-printed Al2O3, all topological structures with both high hardness and excellent flexural strength achieve more than 30% decrease in the friction coefficient. The circular-cored hexagonal honeycomb composite with 30% area density exhibits a stable ultralow friction coefficient of 0.09 and a low wear rate of 2.5 × 10-5 mm3·N-1 m-1 under 5 N. Even under 10 N, a highly desirable coefficient value of 0.08 can be maintained within 370 s. The extraordinary ultralow friction could be attributed to the small contact area, high lubricant mass loading, efficient collection and storage of both abrasive debris and lubricant, and the self-orientation in the lubricating film. This work provides new insights into developing high-efficiency lubrication devices and aids in the industrial application of macroscopic superlubricity in future life.

Entities:  

Keywords:  3D printing; MoS2/MoSe2 heterostructures; friction and wear; superlubricity; topological structures

Year:  2021        PMID: 34278775     DOI: 10.1021/acsami.1c09524

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  1 in total

1.  Reinforcement of nanoporous lanthanum-doped zinc borate by vanadium selenide nanosheets for improved tribological activity.

Authors:  Alok K Singh; Nivedita Shukla; Dinesh K Verma; Bharat Kumar; K D Mandal; Rashmi B Rastogi
Journal:  RSC Adv       Date:  2022-06-24       Impact factor: 4.036

  1 in total

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