Aharon Eyal, Kalina Michael, Frey Gitti L
Department of Materials Engineering, Technion-Israel Institute of Technology, Haifa 32000, Israel.
J Am Chem Soc. 2006 Dec 20;128(50):15968-9. doi: 10.1021/ja066290m.
The generation of white light requires the combination of two or more chromophores that emit simultaneously. The observed color of a mixture of light-emitting molecules, however, originates generally only from the lowest band-gap species because of efficient energy transfer between the chromophores which is difficult to avoid. Here we report on a nanocomposite material designed to yield pure and stable white photo- and electroluminescence. In this material, red, green, and blue emitting conjugated polymers are confined within the galleries of a layered semiconducting host matrix. The host hinders polymer pi-pi interactions which are responsible for the energy transfer between polymer chains, consequently, emission from the three chromophores is observed simultaneously resulting in white photoluminescence. The efficacy of the nanocomposites is demonstrated in simple single-layer white-emitting polymer diodes. The mechanism suggested here for white light generation, supported by extensive luminescence measurements, is in contrast to that previously reported in white-emitting polymer diodes where efficient energy transfer between polymer chains was essential for obtaining white light.
产生白光需要两种或更多种发色团同时发射并结合。然而,由于发色团之间难以避免的高效能量转移,发光分子混合物所观察到的颜色通常仅源于带隙最低的物质。在此,我们报道了一种旨在产生纯净且稳定的白色光致发光和电致发光的纳米复合材料。在这种材料中,发红光、绿光和蓝光的共轭聚合物被限制在层状半导体主体基质的层间。主体阻碍了负责聚合物链间能量转移的聚合物π-π相互作用,因此,可同时观察到三种发色团的发射,从而产生白色光致发光。在简单的单层白色发光聚合物二极管中证明了该纳米复合材料的功效。这里提出的白光产生机制,得到了广泛发光测量的支持,这与之前在白色发光聚合物二极管中报道的机制形成对比,在之前的报道中,聚合物链间的高效能量转移对于获得白光至关重要。