Gaikwad Pradip A, Samadder Prodipta, Som Shubham, Chopra Deepak, Neelakandan Prakash P, Srivastava Aasheesh
Department of Chemistry, Indian Institute of Science Education and Research (IISER) Bhopal, Bhopal Bypass Road, Bhauri, Bhopal 462 066, Madhya Pradesh, India.
Institute of Nano Science and Technology, Sector - 81, Mohali 140306, Punjab, India.
Nanoscale. 2023 Sep 14;15(35):14380-14387. doi: 10.1039/d3nr02903d.
Tetra-coordinated organoboron (TCOB) compounds are promising candidates for developing high-performance optical devices due to their excellent optoelectronic performance. Fabricating TCOB-based nanomaterials of controlled and defined morphology through rapid and easy-to-execute protocols can significantly accelerate their practical utility in the aforesaid applications. Herein, we report water-induced self-assembly (WISA) to convert a polymorphic TCOB complex (HNBI-B, derived from a 2-(2'-hydroxy-naphthyl)-benzimidazole precursor) into two unique nanomorphologies . nanodiscoids (NDs) and fluorescent microtubes with hexagonal cross-sections (HMTs). Detailed electron microscopic investigations revealed that oriented assembly and fusion of the initially formed NDs yield the blue emissive HMTs (SSQY = 26.7%) that exhibited highly promising photophysical behaviour. For example, the HMTs outperformed all the crystal polymorphs of HNBI-B obtained from CHCl, EtOAc and MeOH in emissivity and also exhibited superior waveguide behaviour, with a much lower optical loss coefficient ' = 1.692 dB mm compared to the rod-shaped microcrystals of HNBI-B obtained from MeOH (' = 1.853 dB mm). Thus, this work reports rapid access to high performance optical nanomaterials through WISA, opening new avenues for creating useful nanomaterial morphologies with superior optical performance.
四配位有机硼(TCOB)化合物因其优异的光电性能,是开发高性能光学器件的理想候选材料。通过快速且易于执行的方案制备具有可控和明确形态的基于TCOB的纳米材料,可以显著加速它们在上述应用中的实际应用。在此,我们报道了水诱导自组装(WISA),它能将一种多晶型TCOB配合物(HNBI-B,源自2-(2'-羟基萘基)-苯并咪唑前体)转化为两种独特的纳米形态,即纳米盘(NDs)和具有六边形横截面的荧光微管(HMTs)。详细的电子显微镜研究表明,最初形成的NDs的定向组装和融合产生了蓝色发光的HMTs(固态量子产率 = 26.7%),其表现出非常有前景的光物理行为。例如,HMTs在发射率方面优于从CHCl、EtOAc和MeOH中获得的HNBI-B的所有晶体多晶型物,并且还表现出优异的波导行为,与从MeOH中获得的HNBI-B的棒状微晶相比,其光学损耗系数更低(' = 1.692 dB/mm,而' = 1.853 dB/mm)。因此,这项工作报道了通过WISA快速获得高性能光学纳米材料,为创造具有优异光学性能的有用纳米材料形态开辟了新途径。