Anisotropic surface potentials induced by competitive ion adsorption enable the synthesis of branched cubic Pt mesocrystals

Y Yuna Bae E Eun Mi Kim J Jaehun Chun (Physical and Computational Sciences Directorate, Pacific Northwest National Laboratory 1 , Richland, Washington 99352,) Z Zihua Zhu (Environmental Molecular Sciences Laboratory, Pacific Northwest National Laboratory) T Trevor H. Moser H Hanlei Zhang J Jaeyoung Heo Y Yun Kyung Shin (Department of Mechanical Engineering, The Pennsylvania State University 2 , University Park, Pennsylvania 16802,) H Hua Zhou (X-ray Science Division, Advanced Photon Source, Argonne National Laboratory, Lemont, IL, USA.) J James E. Evans (Environmental Molecular Sciences Division, Pacific Northwest National Laboratory) E Emil C. S. Jensen (Insight Chips Aps, DTU Science Park, 2800 Kongens Lyngby, Copenhagen 2800, Denmark) K Kristian S. Mølhave (DTU Nanolab, National Centre for Nano Fabrication and Characterization, Technical University of Denmark, 2800 Kongens Lyngby, Copenhagen 2800, Denmark) K Kristen A. Fichthorn J James J. De Yoreo (Department of Materials Science and Engineering) D Dongsheng Li (Physical & Computational Sciences Directorate)

Abstract

Abstract Creation of complex nanostructured materials through oriented attachment (OA) requires the manipulation of interparticle forces, including electrostatic repulsion, which depends strongly on surface potentials and can be modified through the effect of solution environment on interfacial chemistry. Here we show that time-dependent anisotropies in surface potential driven by competitive ion adsorption can alter facet-selectivity during OA. This phenomenon enables the synthesis of branched cubic Pt mesocrystals. Initially, Pt nanoparticles attach preferentially at their {100} facets to form a well-defined cubic core. Over time, changes in ion adsorption shift the attachment preference to the {111} facets, promoting branch formation. In both stages, anisotropic surface potentials generate electrostatic torques that align the particles prior to attachment. These findings demonstrate a generalizable strategy for directing the architecture of nanomaterials through time-resolved control of interfacial chemistry during OA, offering new pathways for the design of complex mesoscale structures.

Article Details

Volume / Issue Vol. 16, Issue 1
Published November 05, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (15)

Y

Yuna Bae

E

Eun Mi Kim

J

Jaehun Chun

Physical and Computational Sciences Directorate, Pacific Northwest National Laboratory 1 , Richland, Washington 99352,

Z

Zihua Zhu

Environmental Molecular Sciences Laboratory, Pacific Northwest National Laboratory

T

Trevor H. Moser

H

Hanlei Zhang

J

Jaeyoung Heo

Y

Yun Kyung Shin

Department of Mechanical Engineering, The Pennsylvania State University 2 , University Park, Pennsylvania 16802,

H

Hua Zhou

X-ray Science Division, Advanced Photon Source, Argonne National Laboratory, Lemont, IL, USA.

J

James E. Evans

Environmental Molecular Sciences Division, Pacific Northwest National Laboratory

E

Emil C. S. Jensen

Insight Chips Aps, DTU Science Park, 2800 Kongens Lyngby, Copenhagen 2800, Denmark

K

Kristian S. Mølhave

DTU Nanolab, National Centre for Nano Fabrication and Characterization, Technical University of Denmark, 2800 Kongens Lyngby, Copenhagen 2800, Denmark

K

Kristen A. Fichthorn

J

James J. De Yoreo

Department of Materials Science and Engineering

D

Dongsheng Li

Physical & Computational Sciences Directorate