Infra-red photoresponse of mesoscopic NiO-based solar cells sensitized with PbS quantum dot

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作者
Mahfoudh Raissi
Yann Pellegrin
Stéphane Jobic
Mohammed Boujtita
Fabrice Odobel
机构
[1] CEISAM,
[2] Chimie Et Interdisciplinarité,undefined
[3] Synthèse,undefined
[4] Analyse,undefined
[5] Modélisation CNRS,undefined
[6] UMR CNRS 6230,undefined
[7] UFR des Sciences et des Techniques 2,undefined
[8] rue de la Houssinière-BP 92208,undefined
[9] 44322 NANTES Cedex 3,undefined
[10] Institut des Matériaux Jean Rouxel,undefined
[11] Université de Nantes,undefined
[12] CNRS,undefined
[13] 2,undefined
[14] rue de la Houssinière,undefined
[15] BP 32229,undefined
[16] 44322 Nantes cedex 03,undefined
来源
Scientific Reports | / 6卷
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摘要
Sensitized NiO based photocathode is a new field of investigation with increasing scientific interest in relation with the development of tandem dye-sensitized solar cells (photovoltaic) and dye-sensitized photoelectrosynthetic cells (solar fuel). We demonstrate herein that PbS quantum dots (QDs) represent promising inorganic sensitizers for NiO-based quantum dot-sensitized solar cells (QDSSCs). The solar cell sensitized with PbS quantum dot exhibits significantly higher photoconversion efficiency than solar cells sensitized with a classical and efficient molecular sensitizer (P1 dye = 4-(Bis-{4-[5-(2,2-dicyano-vinyl)-thiophene-2-yl]-phenyl}-amino)-benzoic acid). Furthermore, the system features an IPCE (Incident Photon-to-Current Efficiency) spectrum that spreads into the infra-red region, reaching operating wavelengths of 950 nm. The QDSSC photoelectrochemical device works with the complexes tris(4,4′-ditert-butyl-2,2′-bipyridine)cobalt(III/II) redox mediators, underscoring the formation of a long-lived charge-separated state. The electrochemical impedance spectrocopy measurements are consistent with a high packing of the QDs upon the NiO surface, the high density of which limits the access of the electrolyte and results in favorable light absorption cross-sections and a significant hole lifetime. These notable results highlight the potential of NiO-based photocathodes sensitized with quantum dots for accessing and exploiting the low-energy part of the solar spectrum in photovoltaic and photocatalysis applications.
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