Choi Yonghoon, Kim Dohoon, Shin Yun Seop, Lee Woojin, Orr Seungjin, Kim Jin Young, Park Jongnam
School of Energy and Chemical Engineering, Ulsan National Institute of Science and Technology (UNIST), Ulsan 44919, Republic of Korea.
DUKSAN Techopia Co., Ltd, Cheonan 31217, Republic of Korea.
Nanoscale. 2022 Feb 17;14(7):2771-2779. doi: 10.1039/d1nr08038e.
Despite the importance of separating nucleation steps from growth steps for the production of monodisperse highly luminescent In(Zn)P quantum dots (QDs), the practical implementation of this strategy is hindered by the high reactivity and fast depletion of conventional P precursors. This problem can be mitigated through the use of (i) Zn oxo clusters, which effectively regulate the kinetics of QD growth and prevent the fast depletion of conventional P precursors in the nucleation step, or (ii) seed-mediated continuous growth methods, which avoid secondary nucleation in the growth step and yield red-emitting InP QDs. Herein, we combine approaches (i) and (ii) to synthesize red-emitting In(Zn)P QDs with a high photoluminescence quantum yield (>93%) and a low emission bandwidth (full width at half maximum = 38 nm), revealing that our strategy hinders the carboxylate ketonization-induced generation of byproducts and suppresses the surface oxidation of In(Zn)P QDs during growth steps. The prepared In(Zn)P QDs are used to fabricate QD light-emitting diodes with a maximum brightness of 1164 cd m and an external quantum efficiency of 3.61%. Thus, our results pave the way to the replacement of toxic Cd- and Pb-based QDs with more eco-friendly Zn- and In-based analogs for a variety of applications.
尽管对于制备单分散、高发光的铟(锌)磷量子点(QDs)而言,将成核步骤与生长步骤分离很重要,但该策略的实际实施受到传统磷前驱体高反应性和快速消耗的阻碍。通过使用(i)氧代锌簇,可有效调节量子点生长动力学并防止成核步骤中传统磷前驱体的快速消耗,或者(ii)种子介导的连续生长方法,可避免生长步骤中的二次成核并产生发红光的磷化铟量子点,这一问题能够得到缓解。在此,我们结合方法(i)和(ii)来合成具有高光致发光量子产率(>93%)和低发射带宽(半高宽 = 38 nm)的发红光的铟(锌)磷量子点,这表明我们的策略可抑制羧酸盐酮化诱导的副产物生成,并在生长步骤中抑制铟(锌)磷量子点的表面氧化。所制备的铟(锌)磷量子点用于制造最大亮度为1164 cd m且外量子效率为3.61%的量子点发光二极管。因此,我们的结果为用更环保的基于锌和铟的类似物替代有毒的基于镉和铅的量子点用于各种应用铺平了道路。