Andrés Castán José-María, Mwalukuku Valid Mwatati, Riquelme Antonio J, Liotier Johan, Huaulmé Quentin, Anta Juan A, Maldivi Pascale, Demadrille Renaud
Univ. Grenoble Alpes, CEA, CNRS, IRIG-SyMMES 38000 Grenoble France
Department of Physical, Chemical and Natural Systems, Universidad Pablo de Olavide, Carretera de Utrera km 1 Sevilla 41013 Spain.
Mater Chem Front. 2022 Aug 8;6(20):2994-3005. doi: 10.1039/d2qm00375a. eCollection 2022 Oct 10.
Photochromic dyes possess unique properties that can be exploited in different domains, including optics, biomedicine and optoelectronics. Herein, we explore the potential of photochromic spiro-indoline naphthoxazine (SINO) and naphthopyran (NIPS) for application in photovoltaics. We designed and synthesized four new photosensitizers with a donor-pi-acceptor structure embedding SINO and NIPS units as photochromic cores. Their optical, photochromic and acidochromic properties were thoroughly studied to establish structure-properties relationships. Then, after unravelling the possible forms adopted depending on the stimuli, their photovoltaic properties were evaluated in DSSCs. Although the photochromic behavior is not always preserved, we elucidate the interplay between photochromic, acidochromic and photovoltaic properties and we demonstrate that these dyes can act as photosensitizers in DSSCs. We report a maximum power conversion efficiency of 2.7% with a NIPS-based dye, a tenfold improvement in comparison to previous works on similar class of compounds. This work opens new perspectives of developments for SINO and NIPS in optical and photovoltaic devices, and it provides novel research directions to design photochromic materials with improved characteristics.
光致变色染料具有独特的性质,可在不同领域加以利用,包括光学、生物医学和光电子学。在此,我们探索光致变色螺吲哚萘并恶嗪(SINO)和萘并吡喃(NIPS)在光伏领域的应用潜力。我们设计并合成了四种新型光敏剂,其具有供体-π-受体结构,嵌入SINO和NIPS单元作为光致变色核心。对它们的光学、光致变色和酸致变色性质进行了深入研究,以建立结构-性质关系。然后,在弄清楚根据刺激所采取的可能形式后,在染料敏化太阳能电池(DSSC)中评估了它们的光伏性质。尽管光致变色行为并非总能保持,但我们阐明了光致变色、酸致变色和光伏性质之间的相互作用,并证明这些染料可在DSSC中充当光敏剂。我们报道了一种基于NIPS的染料的最大功率转换效率为2.7%,与之前关于类似化合物类别的工作相比提高了十倍。这项工作为SINO和NIPS在光学和光伏器件方面的发展开辟了新的前景,并为设计具有改进特性的光致变色材料提供了新的研究方向。