Scalable Synthesis of MXene Scrolls

T Teng Zhang B Benjamin Chacon (A.J. Drexel Nanomaterials Institute and Department of Materials Science and Engineering Drexel University Philadelphia Pennsylvania United States of America) D Danzhen Zhang A Aidan Cotton (A.J. Drexel Nanomaterials Institute and Department of Materials Science and Engineering Drexel University Philadelphia Pennsylvania United States of America) Y Yihui Zhang Y Yuan Zhang S Stefano Ippolito F Francesca Urban (A.J. Drexel Nanomaterials Institute and Department of Materials Science and Engineering Drexel University Philadelphia Pennsylvania United States of America) T Tetiana Parker (Drexel University , , , ,) L Lingyi Bi (A.J. Drexel Nanomaterials Institute and Department of Materials Science and Engineering Drexel University Philadelphia Pennsylvania United States of America) K Kateryna Shevchuk (Department of Materials Science and Engineering Drexel University Philadelphia PA 19104 USA) K Kyle Matthews (A.J. Drexel Nanomaterials Institute and Department of Materials Science and Engineering Drexel University Philadelphia Pennsylvania United States of America) E Eric A. Stach (Department of Materials Science and Engineering, University of Pennsylvania, 3231 Walnut Street, Philadelphia, Pennsylvania 19104, United States) Y Yury Gogotsi

Abstract

ABSTRACT MXenes represent a promising class of 2D carbides, nitrides, and carbonitrides known for their high electrical conductivity, hydrophilicity, mechanical strength, and unique optoelectronic properties, which have led to numerous applications. However, their scalable synthesis in 1D morphology, such as nanotubes or scrolls, has not been demonstrated yet. This work presents a versatile and scalable method for manufacturing MXene scrolls, including Ti 2 CT x , Ti 3 C 2 T x , Ti 3 CNT x , V 2 CT x , Nb 2 CT x , and Ta 4 C 3 T x . We demonstrate a scalable and high‐yield production up to 10 g of pure scrolls with precise control over their alignment and morphology. Properties of scrolls differ from 2D flakes; e.g., a freestanding film made of scrolled Nb 2 CT x presents 33 times increase in electrical conductivity and shows a superconducting state below 5.2 K. Films of MXene scrolls exhibit 3 times lower density and enhanced mass transport compared to flakes, resulting in an improved performance in supercapacitor electrodes and humidity sensors. The dispersion of the scrolls in water behaves like an electrorheological fluid. Aligning scrolls in an electric field allows for circuit switching between electrically insulating and conductive states. These scrolls can be assembled into vertically aligned MXene forests, fibers, and other architectures. The availability of 1D MXene scrolls offers exciting opportunities in many fields.

Article Details

Volume / Issue Vol. 38, Issue 12
Published February 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (14)

T

Teng Zhang

B

Benjamin Chacon

A.J. Drexel Nanomaterials Institute and Department of Materials Science and Engineering Drexel University Philadelphia Pennsylvania United States of America

D

Danzhen Zhang

A

Aidan Cotton

A.J. Drexel Nanomaterials Institute and Department of Materials Science and Engineering Drexel University Philadelphia Pennsylvania United States of America

Y

Yihui Zhang

Y

Yuan Zhang

S

Stefano Ippolito

F

Francesca Urban

A.J. Drexel Nanomaterials Institute and Department of Materials Science and Engineering Drexel University Philadelphia Pennsylvania United States of America

T

Tetiana Parker

Drexel University , , , ,

L

Lingyi Bi

A.J. Drexel Nanomaterials Institute and Department of Materials Science and Engineering Drexel University Philadelphia Pennsylvania United States of America

K

Kateryna Shevchuk

Department of Materials Science and Engineering Drexel University Philadelphia PA 19104 USA

K

Kyle Matthews

A.J. Drexel Nanomaterials Institute and Department of Materials Science and Engineering Drexel University Philadelphia Pennsylvania United States of America

E

Eric A. Stach

Department of Materials Science and Engineering, University of Pennsylvania, 3231 Walnut Street, Philadelphia, Pennsylvania 19104, United States

Y

Yury Gogotsi