Controlling the photoactuation in free-standing polydopamine/rGO nanofilms

Z Zuzanna Łukasiewicz (NanoBioMedical Centre, Adam Mickiewicz University 1 , Wszechnicy Piastowskiej 3, 61-614 Poznan,) J Jakub Szewczyk (NanoBioMedical Centre, Adam Mickiewicz University 1 , Wszechnicy Piastowskiej 3, 61-614 Poznan,) H Habib Belaid (Institut Européen des Membranes, IEM, UMR 5635, Univ. Montpellier, CNRS 3 , ENSCM Place Eugène Bataillon, 34095 Montpellier cedex 5,) A Adam Krysztofik (Faculty of Physics, Adam Mickiewicz University 4 , Uniwersytetu Poznańskiego 2, 61-614 Poznań,) M Maciej Wiesner (Faculty of Physics, Adam Mickiewicz University 4 , Uniwersytetu Poznańskiego 2, 61-614 Poznań,) B Bartlomiej Graczykowski (Faculty of Physics, Adam Mickiewicz University 4 , Uniwersytetu Poznańskiego 2, 61-614 Poznań,) M Mikhael Bechelany E Emerson Coy

Abstract

Graphene derivatives, such as graphene oxide (GO), hold significant potential in photonics, photoelectronics, photosensing, and photoactuation. However, their widespread application is hindered by a trade-off between processability and desired properties. GO, while easily dispersible, lacks conductivity. Conversely, reduced graphene oxide (rGO) is conductive but challenging to integrate into solution-based or flexible systems. We present a novel one-pot method to simultaneously reduce GO and embed it within free-standing polydopamine (PDA) films. This process utilizes boric acid and mild hydrothermal treatment, yielding boric acid-modified polydopamine and reduced graphene oxide (BAPDA/rGO) films. These films exhibit enhanced electrical conductivity compared to pure PDA, demonstrating high sensitivity to both white and UV light, even at low power densities (2 mW cm−2). Furthermore, the photoactuation behavior of BAPDA/rGO films is unique. The thermal expansion of rGO dominates over the typical water desorption-induced contraction of PDA, resulting in an opposing photoresponse to pure PDA. This characteristic opens doors for complementary applications. These mechanically robust, nanometrically thin films are transferable to diverse surfaces, making them highly promising for flexible nanoengineering solutions.

Article Details

Volume / Issue Vol. 164, Issue 7
Published February 21, 2026
ISSN 0021-9606
Publisher American Institute of Physics

Journal Info

The Journal of Chemical Physics

American Institute of Physics

ISSN: 0021-9606 Physical Sciences

Authors (8)

Z

Zuzanna Łukasiewicz

NanoBioMedical Centre, Adam Mickiewicz University 1 , Wszechnicy Piastowskiej 3, 61-614 Poznan,

J

Jakub Szewczyk

NanoBioMedical Centre, Adam Mickiewicz University 1 , Wszechnicy Piastowskiej 3, 61-614 Poznan,

H

Habib Belaid

Institut Européen des Membranes, IEM, UMR 5635, Univ. Montpellier, CNRS 3 , ENSCM Place Eugène Bataillon, 34095 Montpellier cedex 5,

A

Adam Krysztofik

Faculty of Physics, Adam Mickiewicz University 4 , Uniwersytetu Poznańskiego 2, 61-614 Poznań,

M

Maciej Wiesner

Faculty of Physics, Adam Mickiewicz University 4 , Uniwersytetu Poznańskiego 2, 61-614 Poznań,

B

Bartlomiej Graczykowski

Faculty of Physics, Adam Mickiewicz University 4 , Uniwersytetu Poznańskiego 2, 61-614 Poznań,

M

Mikhael Bechelany

E

Emerson Coy