Martínez-Esaín Jordi, Pérez-Rodríguez Ana, Faraudo Jordi, Barrena Esther, Yáñez Ramón, Ocal Carmen, Ricart Susagna
Departament de Química, Universitat Autònoma de Barcelona (UAB), 08193 Barcelona, Spain.
Institut de Ciència de Materials de Barcelona, ICMAB-CSI C, Campus de la UAB, 08193 Barcelona, Spain.
Materials (Basel). 2022 Feb 15;15(4):1455. doi: 10.3390/ma15041455.
The remarkable dual nature of faceted-charge patchy metal fluoride nanocrystals arises from the spontaneous selective coordination of anionic and cationic ligands on the different facets of the nanocrystals. In previous studies, the identification and origin of the charge at the patches were obtained by combining computer simulations with indirect experimental evidence. Taking a step further, we report herein the first direct real-space identification by Kelvin probe force microscopy of the predicted faceted-charge patchy behavior, allowing the image of the dual faceted-charge surfaces. High-resolution transmission electron microscopy reveals the detailed nanocrystal faceting and allows unambiguously inferring the hydrophilic or hydrophobic role of each facet from the identification of the surface atoms exposed at the respective crystallographic planes. The success of the study lies in a foresighted synthesis methodology designed to tune the nanocrystal size to be suitable for microscopy studies and demanding applications.
多面电荷片状金属氟化物纳米晶体的显著双重性质源于纳米晶体不同晶面上阴离子和阳离子配体的自发选择性配位。在先前的研究中,通过将计算机模拟与间接实验证据相结合,确定了斑块处电荷的身份和来源。更进一步,我们在此报告了首次通过开尔文探针力显微镜对预测的多面电荷片状行为进行直接实空间识别,从而获得了双面电荷表面的图像。高分辨率透射电子显微镜揭示了纳米晶体的详细刻面,并通过识别在各自晶面平面上暴露的表面原子,明确推断出每个晶面的亲水或疏水作用。该研究的成功在于一种有远见的合成方法,该方法旨在将纳米晶体尺寸调整到适合显微镜研究和苛刻应用的大小。