4.8 Article

Marangoni Flow Manipulated Concentric Assembly of Cellulose Nanocrystals

Journal

SMALL METHODS
Volume 5, Issue 11, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smtd.202100690

Keywords

cellulose nanocrystals; evaporation-induced self-assembly; information encryption; Maltese cross; Marangoni effect

Funding

  1. National Natural Science Foundation of China [21975160, 61932020]
  2. ShanghaiTech University, National Key R&D Program of China [2018AAA0100704]
  3. Science and Technology Commission of Shanghai Municipality [20ZR1436000]
  4. Shanghai Education Development Foundation
  5. Shanghai Municipal Education Commission

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A novel method for assembling cellulose nanocrystals (CNCs) into concentric alignment using capillary flow and Marangoni effect is demonstrated, contrasting traditional assembly methods. This concentric assembly shows excellent uniformity and high resolution, and can be easily regulated by temperature. Combining with 3D inkjet technology, a functional binary system for information encryption and decryption is established.
Tunable assembly of cellulose nanocrystals (CNCs) is important for a variety of emerging applications in optics, sensing, and security. Most exploited assembly and optical property of CNCs are cholesteric assembly and corresponding circular dichroism. However, it still remains challenge to obtain homogenous and high-resolution cholesteric assembly. Distinct assembly and optical property of CNCs are highly demanded for advanced photonic materials with novel functions. Herein, a facile and programmable approach for assembling CNCs into a novel concentric alignment using capillary flow and Marangoni effect, which is in strike contrast to conventional cholesteric assembly, is demonstrated. The concentric assembly, as quantitatively evidenced by polarized synchrotron radiation Fourier transform infrared imaging, demonstrates Maltese cross optical pattern with good uniformity and high resolution. Furthermore, this Maltese cross can be readily regulated to on/off states by temperature. By combining with 3D inkjet technology, a functional binary system composed of on/off CNCs optical patterns with high spatial resolution, fast printing speed, good repeatability, and precisely controllable optical property is established for information encryption and decryption. This concentric assembly of CNCs and corresponding tunable optical property emerge as a promising candidate for information security, anticounterfeiting technology, and advanced optics.

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