Kirscher Quentin, Hajjar-Garreau Samar, Grasset Fabien, Berling Dominique, Soppera Olivier
Institut de Science des Matériaux de Mulhouse (IS2M) UMR 7361 CNRS-UHA, Université de Haute Alsace, Mulhouse, France.
Université de Strasbourg, Strasbourg, France.
Sci Technol Adv Mater. 2022 Oct 7;23(1):535-546. doi: 10.1080/14686996.2022.2116294. eCollection 2022.
Micro- and nanopatterning of metal oxide materials is an important process to develop electronic or optoelectronic devices. ZnO is a material of choice for its semiconducting and photoluminescence properties. In the frame of the nanoarchitectonics concept, we have developed and investigated a new process that relies on direct writing laser patterning in the Deep-UV (DUV) range to prepare photoluminescent microstructures of ZnO at room temperature, under air. This process is based on a synthesis of colloidal ZnO nanocrystals (NCs) with a careful choice of the ligands on the surface to obtain an optimal (i) stability of the colloids, (ii) redissolution of the non-insolated parts and (iii) cross-linking of the DUV-insolated parts. The mechanisms of photocrosslinking are studied by different spectroscopic methods. This room temperature process preserves the photoluminescence properties of the NCs and the wavelength used in DUV allows to reach a sub-micrometer resolution, which opens new perspectives for the integration of microstructures on flexible substrates for optoelectronic applications.
金属氧化物材料的微纳图案化是开发电子或光电器件的重要过程。氧化锌因其半导体和光致发光特性而成为首选材料。在纳米结构概念的框架下,我们开发并研究了一种新工艺,该工艺依赖于深紫外(DUV)范围内的直接写入激光图案化,以在室温下、空气中制备氧化锌的光致发光微结构。此工艺基于胶体氧化锌纳米晶体(NCs)的合成,通过精心选择表面配体来实现:(i)胶体的最佳稳定性,(ii)未曝光部分的再溶解,以及(iii)深紫外曝光部分的交联。通过不同的光谱方法研究了光交联机制。这种室温工艺保留了纳米晶体的光致发光特性,并且深紫外中使用的波长能够实现亚微米分辨率,这为在柔性基板上集成用于光电子应用的微结构开辟了新的前景。