Sadu Venkata S, Bin Hye-Rin, Lee Do-Min, Lee Kee-In
Major of Green Chemistry and Environmental Biotechnology, University of Science & Technology, Taejon, 305-350, South Korea.
Green Chemistry Division, Korea Research Institute of Chemical Technology, Taejon, 305-600, South Korea.
Sci Rep. 2017 Mar 21;7(1):242. doi: 10.1038/s41598-017-00236-2.
Multidisciplinary applications of four-coordinate boron(III) complexes make them very attractive and challenging research field in chemistry, biology and material sciences. The dual role played by boron atom in stabilising the chelate ligand and enhancing the π-conjugation makes them very useful as luminescent materials for organic electronics and photonics, and sensing and imaging probes for biomedical purposes. The conventional methods involve the use of diarylborinic acids or anhydrides and triaryl boranes, which are made from organometallic reagents. The strong nucleophilicity of these reagents limits the peripheral modifications onto the boron cores. Here, we report a metal-free one-pot synthesis of four-coordinate organoborons using boronic acids, which represents the first instance of ligand assisted organic group migration between boronic acids. A tetrahedral boron 'ate' complex capable of transferring an organic group to the adjacent sp boron within a boronic anhydride intermediate is proposed and preliminary mechanistic studies by MALDI-TOF and B NMR support this proposal. The products are available from a series of N,O-, N,N- and O,O-bidentate ligands upon a wide array of boronic acids. We anticipate that this reaction will impact the way of producing the four-coordinate organoborons, and propel a new discovery of such materials for optoelectronic and biomedical applications.
四配位硼(III)配合物的多学科应用使其成为化学、生物学和材料科学中极具吸引力且具有挑战性的研究领域。硼原子在稳定螯合配体和增强π共轭方面所起的双重作用,使其作为有机电子学和光子学的发光材料以及生物医学用途的传感和成像探针非常有用。传统方法涉及使用由有机金属试剂制备的二芳基硼酸或酸酐以及三芳基硼烷。这些试剂的强亲核性限制了硼核上的外围修饰。在此,我们报道了一种使用硼酸的无金属一锅法合成四配位有机硼,这代表了配体辅助有机基团在硼酸之间迁移的首例。提出了一种能够将有机基团转移至硼酸酐中间体中相邻sp硼的四面体硼“酸根”配合物,并且通过基质辅助激光解吸电离飞行时间质谱(MALDI-TOF)和硼核磁共振(B NMR)进行的初步机理研究支持了这一推测。该反应可通过一系列N,O-、N,N-和O,O-双齿配体与多种硼酸反应得到产物。我们预计该反应将影响四配位有机硼的制备方式,并推动此类用于光电和生物医学应用材料的新发现。