Light‐Activated Micromotors in Air Propelled by Thermal Convection

P Pedro Mena‐Giraldo (Department of Chemistry and Biochemistry & Centre for NanoScience Research Concordia University 7141 Rue Sherbrooke Ouest Montreal Quebec H4B 1R6 Canada) G Gabrielle A. Mandl (Department of Chemistry and Biochemistry and Centre for NanoScience Research Concordia University Montreal QC H4B 1R6 Canada) V Victor Quezada‐Novoa (Department of Chemistry and Biochemistry & Centre for NanoScience Research Concordia University 7141 Rue Sherbrooke Ouest Montreal Quebec H4B 1R6 Canada) C Camilo Garcia‐Henao (Department of Chemistry and Biochemistry & Centre for NanoScience Research Concordia University 7141 Rue Sherbrooke Ouest Montreal Quebec H4B 1R6 Canada) N Nicolas Bondon (Department of Chemistry and Biochemistry & Centre for NanoScience Research Concordia University 7141 Rue Sherbrooke Ouest Montreal Quebec H4B 1R6 Canada) M Melanie Jane Hazlett (Department of Chemical and Materials Engineering & Centre for NanoScience Research Concordia University 7141 Sherbrooke St. W. Montreal QC H4B 1R6 Canada) J John A. Capobianco (Department of Chemistry and Biochemistry and Centre for NanoScience Research Concordia University Montreal QC H4B 1R6 Canada)

Abstract

Abstract Micromotors are an attractive cutting‐edge technology that exhibit controllable motion in response to chemical reactions or external stimuli. These nature‐inspired materials are widely explored for use in environmental remediation, and drug delivery, other emerging applications. Until now, the micromotors field is restricted to applications in aqueous environments, as achieving controllable motion in air while overcoming gravity remains a significant challenge. Herein, for the first time, to our knowledge, we introduce a system capable of overcoming gravity to achieve light‐induced thermal convective motion in air, driven by near‐infrared light excitation. The micromotors are composed of spiky, pollen‐like ZnO microparticles coated with gold nanoparticles, which interact photothermally with the NIR light, generating a thermal gradient that induces propulsion of the micromotor system. Lanthanide‐doped upconverting nanoparticles are deposited onto the micromotor surface to enable nanothermometric monitoring of surface temperature, providing critical information needed to describe the system's thermal behavior in air. This micromotor platform provides a versatile approach to overcome gravity and induce a controllable movement in a gaseous matrix, opening new opportunities to develop proof‐of‐concepts and applications using this aerodynamic micromotor approach.

Article Details

Volume / Issue Vol. 38, Issue 1
Published January 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (7)

P

Pedro Mena‐Giraldo

Department of Chemistry and Biochemistry & Centre for NanoScience Research Concordia University 7141 Rue Sherbrooke Ouest Montreal Quebec H4B 1R6 Canada

G

Gabrielle A. Mandl

Department of Chemistry and Biochemistry and Centre for NanoScience Research Concordia University Montreal QC H4B 1R6 Canada

V

Victor Quezada‐Novoa

Department of Chemistry and Biochemistry & Centre for NanoScience Research Concordia University 7141 Rue Sherbrooke Ouest Montreal Quebec H4B 1R6 Canada

C

Camilo Garcia‐Henao

Department of Chemistry and Biochemistry & Centre for NanoScience Research Concordia University 7141 Rue Sherbrooke Ouest Montreal Quebec H4B 1R6 Canada

N

Nicolas Bondon

Department of Chemistry and Biochemistry & Centre for NanoScience Research Concordia University 7141 Rue Sherbrooke Ouest Montreal Quebec H4B 1R6 Canada

M

Melanie Jane Hazlett

Department of Chemical and Materials Engineering & Centre for NanoScience Research Concordia University 7141 Sherbrooke St. W. Montreal QC H4B 1R6 Canada

J

John A. Capobianco

Department of Chemistry and Biochemistry and Centre for NanoScience Research Concordia University Montreal QC H4B 1R6 Canada