Kelvin Probe Force Microscopy in Bionanotechnology: Current Advances and Future Perspectives

E Ehsan Rahimi M Mario Palacios‐Corella (Departament de Ciència dels Materials i Química Física Institut de Química Teòrica i Computacional Universitat de Barcelona Barcelona 08028 Spain) A Arjan Mol S Salvador Pané (Multi-Scale Robotics Lab, Institute of Robotics and Intelligent Systems, ETH Zürich, Tannenstrasse 3, Zürich CH-8092, Switzerland) J Josep Puigmartí‐Luis (Departament de Ciència de Materials i Química Física Universitat de Barcelona C/ Martí i Franquès, 1–11 Barcelona 08028 Spain)

Abstract

AbstractKelvin probe force microscopy (KPFM) is a highly advanced technique offering notable surface sensitivity and high lateral resolution, ranging from micrometres to the sub‐nanometre scale. This scanning probe technique effectively detects local electrical surface potential (ESP), influenced charge distribution, and work function differences, making it essential for studying biological and biochemical processes, from single molecules to complex cellular structures. By enabling nanometre‐resolution analysis under simulated conditions, KPFM provides crucial insights into the physicochemical evolution, functionality, and structural organization of biomolecular systems. Recent advancements have significantly expanded KPFM's capabilities, revealing ESP characteristics in diverse biological entities, including single proteins, DNA strands, lipid films, fibrils, and complex neuronal structures. The technique also facilitates the study of biomolecular nanolayers on advanced nanomaterials like gold nanoparticles and carbon nanotubes, enhancing its role in bio‐nanotechnology. Such versatility highlights KPFM's transformative potential in elucidating biomolecular interactions at unprecedented resolutions. This review critically analyses recent advancements, addresses ongoing challenges in measuring ESP in biological samples, and highlights emerging strategies to improve resolution and sensitivity. Additionally, KPFM's implications in diagnostics, biosensing, tissue engineering, therapeutics, drug screening, and Alzheimer's research are explored, establishing it as a powerful tool at the intersection of nanotechnology and biomedical innovation.

Article Details

Volume / Issue Vol. 1, Issue 1
Published September 04, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (5)

E

Ehsan Rahimi

M

Mario Palacios‐Corella

Departament de Ciència dels Materials i Química Física Institut de Química Teòrica i Computacional Universitat de Barcelona Barcelona 08028 Spain

A

Arjan Mol

S

Salvador Pané

Multi-Scale Robotics Lab, Institute of Robotics and Intelligent Systems, ETH Zürich, Tannenstrasse 3, Zürich CH-8092, Switzerland

J

Josep Puigmartí‐Luis

Departament de Ciència de Materials i Química Física Universitat de Barcelona C/ Martí i Franquès, 1–11 Barcelona 08028 Spain