In situ probing of electron transfer at the dynamic MoS2/Graphene-water interface for modulating boundary slip
编号:6 访问权限:仅限参会人 更新:2024-10-13 21:45:38 浏览:591次 口头报告

报告开始:2024年10月19日 11:20(Asia/Shanghai)

报告时间:15min

所在会场:[S3] Nano-materials and Nano-coatings [S3A] Session 3A

暂无文件

摘要
The boundary slip condition is pivotal for nanoscale fluid motion. Recent research has primarily focused on simulating the interaction mechanism between the electronic structure of two-dimensional materials and slip of water at the nanoscale, raising the possibility for ultralow friction flow of water at the nanoscale. However, experimentally elucidating electronic interactions at the dynamic solid-liquid interface to control boundary slip poses a significant challenge. In this study, the crucial role of electron structures at the dynamic solid-liquid interface in regulating slip length was revealed. Notably, the slip length of water on the molybdenum disulfide/graphene (MoS2/G) heterostructure (100.9 ± 3.6 nm) significantly exceeded that of either graphene (27.7 ± 2.2 nm) or MoS2 (5.7 ± 3.1 nm) alone. It was also analyzed how electron transfer significantly affected interface interactions. Excess electrons played a crucial role in determining the type and proportion of excitons at both MoS2-water and MoS2/G-water interfaces. Additionally, by applying voltage, distinct photoluminescence (PL) responses at static and dynamic interfaces were discovered, achieving a 5-fold modulation in PL intensity and a 2-fold modulation in the trion to exciton intensity ratio. More electrons transfer from the top graphene to the bottom MoS2 at the MoS2/G-water interface, reducing surface charge density. Thus, the reduction of electrostatic interactions between the solid and water leads to an increased slip length of water on the MoS2/G heterostructure. The process aids in comprehending the origin of frictional resistance at the subatomic scale. This work establishes a foundation for actively controlling and designing of fluid transport at the nanoscale.
关键词
solid-liquid interface;slip length;electron transfer;Two-Dimensional Materials
报告人
Yishu Han
Tsinghua University, China

稿件作者
大猛 刘 清华大学
逸姝 韩 清华大学
发表评论
验证码 看不清楚,更换一张
全部评论
重要日期
  • 会议日期

    10月18日

    2024

    10月20日

    2024

  • 10月17日 2024

    报告提交截止日期

  • 10月20日 2024

    注册截止日期

  • 11月18日 2024

    初稿截稿日期

主办单位
中国机械工程学会表面工程分会
承办单位
大连理工大学
山东理工大学
联系方式
移动端
在手机上打开
小程序
打开微信小程序
客服
扫码或点此咨询