Small metal oligomers have gained significant attention due to their exceptional optoelectronic properties and versatile applications, ranging from sensors to imaging and catalysis. However, the need for matrices (silica, zeolites, or metal-organic frameworks) to prevent aggregation into larger metallic particles reduces their potential applicability in light-emitting devices (LEDs) due to their poor electrical properties. To address this issue, a novel semiconductor stabilizer, titanosilicate, is proposed as an innovative solution for Ag-based luminescent materials. These results show that titanosilicate, characterized by high thermochemical stability and well-defined semiconducting properties, is an ideal scaffold for Ag-luminescent species. Optical spectroscopic techniques reveal that Ag-titanosilicates feature an orange fluorescence with a photoluminescence quantum yield reaching 20%. In contrast, a combination of X-ray diffraction, TEM, and XEOL-X-ray absorption spectroscopic techniques show that, unlike zeolites, the luminescent species consist of single Ag atoms. The electroluminescent properties of the proposed Ag-titanosilicate are further investigated within a conventional LED architecture by using the new material as an emissive layer. The developed proof-of-concept LED exhibits a significant improvement of the ZEOLEDs, where a smaller low turn-on voltage of 2 V (enabling energy-efficient operation) and high color rendering index of 80 introduces exciting prospects for developing advanced Ag-LED phosphors.
Single Atom Silver‐Phosphors in Titanosilicate Matrix for Enhanced LED Applications
Acapito, Francesco d'Membro del Collaboration Group
;
2024
Abstract
Small metal oligomers have gained significant attention due to their exceptional optoelectronic properties and versatile applications, ranging from sensors to imaging and catalysis. However, the need for matrices (silica, zeolites, or metal-organic frameworks) to prevent aggregation into larger metallic particles reduces their potential applicability in light-emitting devices (LEDs) due to their poor electrical properties. To address this issue, a novel semiconductor stabilizer, titanosilicate, is proposed as an innovative solution for Ag-based luminescent materials. These results show that titanosilicate, characterized by high thermochemical stability and well-defined semiconducting properties, is an ideal scaffold for Ag-luminescent species. Optical spectroscopic techniques reveal that Ag-titanosilicates feature an orange fluorescence with a photoluminescence quantum yield reaching 20%. In contrast, a combination of X-ray diffraction, TEM, and XEOL-X-ray absorption spectroscopic techniques show that, unlike zeolites, the luminescent species consist of single Ag atoms. The electroluminescent properties of the proposed Ag-titanosilicate are further investigated within a conventional LED architecture by using the new material as an emissive layer. The developed proof-of-concept LED exhibits a significant improvement of the ZEOLEDs, where a smaller low turn-on voltage of 2 V (enabling energy-efficient operation) and high color rendering index of 80 introduces exciting prospects for developing advanced Ag-LED phosphors.File | Dimensione | Formato | |
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Descrizione: This is the peer reviewed version of the following article: Adv. Optical Mater. 2024, 12, 2301894, which has been published in final form at https://doi.org/10.1002/adom.202301894. This article may be used for non-commercial purposes in accordance with Wiley Terms and Conditions for Use of Self-Archived Versions. This article may not be enhanced, enriched or otherwise transformed into a derivative work, without express permission from Wiley or by statutory rights under applicable legislation. Copyright notices must not be removed, obscured or modified. The article must be linked to Wiley’s version of record on Wiley Online Library and any embedding, framing or otherwise making available the article or pages thereof by third parties from platforms, services and websites other than Wiley Online Library must be prohibited.
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