Soft-matter-induced orderings in a solid-state van der Waals heterostructure

K Kai Zhao B Baojuan Dong Y Yuang Wang (State Key Laboratory of Coordination Chemistry, Chemistry and Biomedicine Innovation Center (ChemBIC)) X Xiaoxue Fan Q Qi Wang Z Zhiren Xiong J Jinkun He K Kaining Yang M Minru Qi C Chengbing Qin T Tongyao Zhang M Maolin Chen H Hanwen Wang J Jianqi Huang K Kai Liu H Hanwei Huang K Kenji Watanabe T Takashi Taniguchi Y Yaning Wang X Xixiang Zhang (Material Science and Engineering Program, Division of Physical Science and Engineering, King Abdullah University of Science and Technology (KAUST), Thuwal, Kingdom of Saudi Arabia.) J Juehan Yang Z Zhenwen Huang Y Yongjun Li (HHMI, University of Pennsylvania) Z Zhongming Wei J Jing Zhang S Shuoxing Jiang (State Key Laboratory of Coordination Chemistry, Chemistry and Biomedicine Innovation Center (ChemBIC)) Z Zheng Vitto Han F Funan Liu

Abstract

Abstract Deoxyribose nucleic acid (DNA), a type of soft matter, is often considered a promising building block to fabricate and investigate hybrid heterostructures with exotic functionalities. However, at this stage, investigations on DNA-enabled nanoelectronics have been largely limited to zero-dimensional (0D) and/or one-dimensional (1D) structures. Exploring their potential in higher dimensions, particularly in combination with hard matter solids such as van der Waals (vdW) two-dimensional (2D) materials, has proven challenging. Here, we show that 2D tessellations of DNA origami thin films, with a lateral size over 10 μm, can function as a sufficiently stiff substrate (Young’s modulus of  ~4 GPa). We further demonstrate a two-dimensional soft-hard interface of matter (2D-SHIM), in which vdW layers are coupled to the 2D tessellations of DNA origami. In such 2D-SHIM, the DNA film can then serve as a superlattice due to its sub-100 nm sized pitch of the self-assemblies, which modulates the electronic states of the hybrid system. Our findings open up promising possibilities for manipulating the electronic properties in hard matter using soft matter as a super-structural tuning knob, which may find applications in next generation nanoelectronics.

Article Details

Volume / Issue Vol. 16, Issue 1
Published March 10, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (28)

K

Kai Zhao

B

Baojuan Dong

Y

Yuang Wang

State Key Laboratory of Coordination Chemistry, Chemistry and Biomedicine Innovation Center (ChemBIC)

X

Xiaoxue Fan

Q

Qi Wang

Z

Zhiren Xiong

J

Jinkun He

K

Kaining Yang

M

Minru Qi

C

Chengbing Qin

T

Tongyao Zhang

M

Maolin Chen

H

Hanwen Wang

J

Jianqi Huang

K

Kai Liu

H

Hanwei Huang

K

Kenji Watanabe

T

Takashi Taniguchi

Y

Yaning Wang

X

Xixiang Zhang

Material Science and Engineering Program, Division of Physical Science and Engineering, King Abdullah University of Science and Technology (KAUST), Thuwal, Kingdom of Saudi Arabia.

J

Juehan Yang

Z

Zhenwen Huang

Y

Yongjun Li

HHMI, University of Pennsylvania

Z

Zhongming Wei

J

Jing Zhang

S

Shuoxing Jiang

State Key Laboratory of Coordination Chemistry, Chemistry and Biomedicine Innovation Center (ChemBIC)

Z

Zheng Vitto Han

F

Funan Liu