Related Experiment Video
Updated: Sep 16, 2025

Synthesis of Graphene Nanofluids with Controllable Flake Size Distributions
Published on: July 17, 2019
Suppression of the Leidenfrost Phenomenon by a Superhydrophilic Graphene Nanobush
Kun Wang1,2, Jiamin Zhu1, Shuo Wang1
1School of Mechanical and Electrical Engineering, Beijing University of Chemical Technology, Beijing 100029, China.
Abstract:
The Leidenfrost phenomenon considerably reduces heat transfer at high temperatures, but proper micro/nanofabrication can enhance heat transfer by elevating the Leidenfrost temperature. However, the complicated micro- and nanofabrication techniques are difficult to implement in large-scale commercial applications. This paper describes a superhydrophilic graphene nanobush (SGNB) on Cu plates prepared by the PECVD method and subsequent air plasma etching that improves spray cooling heat transfer. The results show that the Leidenfrost temperature of the superhydrophilic graphene nanobush on a Cu plate (SGNB/Cu) is up to 240 °C greater than that of a bare Cu surface. The much higher temperature on the SGNB/Cu surface is due to the fast water wicking and spreading by the nanobush's superhydrophilicity, as well as the increased heat transfer area, increased number of boiling nucleation sites, and robust vapor channels provided by the porous nanobush structure. This study shows the great ability of the nanobush for enhancing boiling heat transfer and a feasible strategy for suppressing the Leidenfrost phenomenon.

