Huang Hsiu-Ying, Talite Maria Jessabel, Cai Kun-Bin, Soebroto Ruth Jeane, Chang Sheng-Hsiung, Liu Wei-Ren, Chou Wu-Ching, Yuan Chi-Tsu
Department of Physics, Chung Yuan Christian University, Taoyuan, Taiwan.
Nanoscale. 2020 Dec 8;12(46):23537-23545. doi: 10.1039/d0nr07163c.
Solar energy can be harvested using luminescent solar concentrators (LSCs) incorporated with edge-mounted solar cells without sacrificing their see-through visibility, thus facilitating the development of solar windows. Eco-friendly carbon dots (CDs) are promising alternatives to heavy-metal-containing quantum dots in LSC applications. Unfortunately, their solid-state quantum yield (QY) at high optical density (required by laminated LSCs) is still low (<30%) and the Stokes shift is only moderate (<100 nm). Here, we studied the host-guest interaction between aminosilane-functionalized, nitrogen-containing CDs (Si-NCDs) and a silica matrix for preparing efficient laminated LSCs. We found that a sol-gel-derived silica matrix with vacuum treatment can efficiently suppress the direct nonradiative transition of the absorbing states and selectively enhance the long-wavelength-emitting surface states. Therefore, the formed Si-NCDs@silica composites simultaneously exhibited high QYs (>60%) and large Stokes shifts (>200 nm) even at a high loading content (∼10 wt%), while still exhibiting high optical transparency. Moreover, unlike conventional QY reduction upon increasing the excitation wavelengths, such high QY values can be maintained over all excitation wavelengths in the absorption region. Benefiting from these photophysical properties, efficient laminated LSCs were simply prepared, yielding a high optical efficiency of ∼4.4%.
可以使用与边缘安装的太阳能电池相结合的发光太阳能聚光器(LSC)来收集太阳能,而不会牺牲其透视能见度,从而促进太阳能窗户的发展。在LSC应用中,环保型碳点(CD)是含重金属量子点的有前途的替代品。不幸的是,它们在高光密度(层压LSC所需)下的固态量子产率(QY)仍然很低(<30%),并且斯托克斯位移仅为中等(<100 nm)。在此,我们研究了氨基硅烷功能化的含氮CD(Si-NCD)与二氧化硅基质之间的主客体相互作用,以制备高效的层压LSC。我们发现,经过真空处理的溶胶-凝胶衍生二氧化硅基质可以有效抑制吸收态的直接非辐射跃迁,并选择性增强长波长发射表面态。因此,即使在高负载量(~10 wt%)下,形成的Si-NCD@二氧化硅复合材料同时表现出高QY(>60%)和大斯托克斯位移(>200 nm),同时仍表现出高光学透明度。此外,与增加激发波长时传统的QY降低不同,在吸收区域的所有激发波长上都可以保持如此高的QY值。受益于这些光物理性质,简单地制备了高效的层压LSC,产生了约4.4%的高光学效率。