Related Experiment Video
Updated: Dec 14, 2025

Preparation of Nanoparticles for ToF-SIMS and XPS Analysis
Published on: September 13, 2020
Taming the Coffee Ring Effect: Enhanced Thermal Control as a Method for Thin-Film Nanopatterning
Rafal Sliz1, Jakub Czajkowski1,2, Tapio Fabritius1
1Optoelectronics and Measurement Techniques Unit, Faculty of Information Technology and Electrical Engineering, University of Oulu, Erkki Koiso-Kanttilankatu 3, 90570 Oulu, Finland.
Abstract:
Predicting and controlling a droplet's behavior on surfaces is very complex due to several factors affecting its nature. These factors play a crucial role in colloidal material deposition and related solution-based manufacturing methods such as printing. A better understanding of the processes governing the droplet in the picoliter regime is needed to help develop novel thin-film manufacturing methods and improve the current ones. This study introduces the substrate temperature as a method to control the droplet's behavior during inkjet printing, especially the coffee-ring phenomena, at an unprecedented temperature range (25-250 °C). To explain the particular behavior of the droplet, this research associates the creation of specific coffee-ring micro/nanostructures at elevated temperatures with the Leidenfrost effect that is responsible for creating a vapor pocket under the drying drop. Herein, we combine experimental data and numerical methods to explain the drying dynamic of the picoliter-size droplet on the substrate at elevated temperatures. The achieved results indicate that the coffee-ring effect is correlated with the heat-transfer changes caused by the Leidenfrost effect and can be controlled and used to produce micro/nanostructured thin films without additional processing steps.
More Related Videos
07:47Use of Sacrificial Nanoparticles to Remove the Effects of Shot-noise in Contact Holes Fabricated by E-beam Lithography
Published on: February 12, 2017
07:20Fabrication of Micro-Patterned Chip with Controlled Thickness for High-Throughput Cryogenic Electron Microscopy
Published on: April 21, 2022