Department of Chemistry, Materials and Chemical Engineering "Giulio Natta", Politecnico di Milano, Piazza Leonardo da Vinci 32, Milano, 20133, Italy.
Department of Chemistry, Università degli Studi di Milano, Via Camillo Golgi 19, Milano, 20133, Italy.
Macromol Rapid Commun. 2024 Jun;45(12):e2300724. doi: 10.1002/marc.202300724. Epub 2024 Mar 23.
Luminescent solar concentrators (LSCs) are spectral conversion devices offering interesting opportunities for the integration of photovoltaics into the built environment and portable systems. The Förster-resonance energy transfer (FRET) process can boost the optical response of LSCs by reducing energy losses typically associated to non-radiative processes occurring within the device under operation. In this work, a new class of FRET-based thin-film LSC devices is presented, in which the synthetic versatility of linear polyurethanes (PU) is exploited to control the photophysical properties and the device performance of the resulting LSCs. A series of luminescent linear PUs are synthesized in the presence of two novel bis-hydroxyl-functionalized luminophores of suitable optical properties, used as chain extenders during the step-growth polyaddition reaction for the formation of the linear macromolecular network. By synthetically tuning their composition, the obtained luminescent PUs can achieve a high energy transfer efficiency (≈90%) between the covalently linked luminophores. The corresponding LSC devices exhibit excellent photonic response, with external and internal photon efficiencies as high as ≈4% and ≈37%, respectively. Furthermore, their optimized power conversion efficiency combined with their enhanced average visible-light transmittance highlight their suitability for potential use as transparent solar energy devices.
上转换发光太阳能集中器 (LSC) 是一种光谱转换器件,为将光伏技术集成到建筑环境和便携式系统中提供了有趣的机会。Förster 共振能量转移 (FRET) 过程可以通过减少器件运行过程中非辐射过程中通常存在的能量损失来提高 LSC 的光学响应。在这项工作中,提出了一种新的基于 FRET 的薄膜 LSC 器件,其中线性聚氨酯 (PU) 的合成多功能性被利用来控制所得 LSC 的光物理性质和器件性能。在两种新型双羟基官能化发光体的存在下合成了一系列发光线性 PU,它们用作链扩展剂,在逐步加成聚合反应中形成线性大分子网络。通过对其组成进行合成调谐,获得的发光 PU 可以在共价连接的发光体之间实现高能量转移效率(约 90%)。相应的 LSC 器件表现出优异的光子响应,外量子效率和内量子效率分别高达约 4%和 37%。此外,它们优化的功率转换效率结合增强的平均可见光透过率突出了它们作为透明太阳能器件的潜在用途。