Catalytic-assembly of programmable atom equivalents

Author:

Yao Dongbao1ORCID,Zhang Yunhan1ORCID,Zhou Xiang1,Sun Xiaoyun1,Liu Xiaoyu1,Zhou Junxiang1,Jiang Wei2ORCID,Hua Wenqiang3,Liang Haojun1ORCID

Affiliation:

1. Department of Polymer Science and Engineering, Hefei National Research Center for Physical Sciences at the Microscale, Collaborative Innovation Center of Chemistry for Energy Materials, University of Science and Technology of China, Hefei, Anhui 230026, P. R. China

2. State Key Laboratory of Polymer Physics and Chemistry, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, Jilin 130022, P. R. China

3. Shanghai Synchrotron Radiation Facility, Zhangjiang Laboratory, Shanghai Advanced Research Institute, Chinese Academy of Sciences, Shanghai 201204, P. R. China

Abstract

Escape from metastable states in self-assembly of colloids is an intractable problem. Unlike the commonly adopted approach of thermal annealing, the recently developed enthalpy-mediated strategy provided a different option to address this dilemma in a dynamically controllable manner at room temperature. However, it required a complex catalytic-assembly DNA strand-displacement circuitry to mediate interaction between multiple components. In this work, we present a simple but effective way to achieve catalytic-assembly of DNA-functionalized colloidal nanoparticles, i.e., programmable atom equivalents, in a far-from-equilibrium system. A removable molecule named “catassembler” that acts as a catalyst was employed to rectify imperfect linkages and help the system escape from metastability without affecting the assembled framework. Notably, catalytic efficiency of the catassembler can be effectively improved by changing the seesaw catassembler in toehold length design or numbers of the repeat units. Leveraging this tractable catalytic-assembly approach, different ordered architectures were easily produced by directly mixing all reactants, as in chemical reactions. By switching bonding identities, solid–solid phase transformations between different colloidal crystals were achieved. This work opens up an avenue for programming colloid assembly in a far-from-equilibrium system.

Funder

National Natural Science Foundation of China

MOST | National Key Research and Development Program of China

Open Research Fund of State Key Laboratory of Polymer Physics and Chemistry

USTC Research Funds of the Double First-Class Initiative

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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