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分子光谱学

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Fluorescence SpectraViewer (thermofisher.cn) (染料吸收-发射峰信息)


经典教材

Principles of Fluorescence Spectroscopy.pdf


Chen X. Y.-Photothermal therapy and photoacoustic imaging via nanotheranostics in fighting cancer-Chem. Soc. Rev.-2019.pdf (关于染料分子光热转换的研究报道)

Correia I.-Prototypic Heptamethine Cyanine Incorporating Nanomaterials for Cancer-Adv Healthcare Materials-2020.pdf (关于染料分子光热转换的研究报道)

Lehn J.-Supramolecular Chemistry-Scope and Perspectives Molecules, Supermolecules, and Molecular Devices-Angew-1988.pdf (1988年诺奖演说,超分子)

Liu Y.-Strategies for maximizing photothermal conversion efficiency based on organic dyes-Drug Discovery Today-2021.pdf (论证为什么分子过近引发光热-有机分子的光热转换机理揭示)

Spano F.-The Spectral Signatures of Frenkel Polarons in H- and J-Aggregates-Acc. Chem. Res.-2010.pdf (论证为什么分子过近会引发聚集)

Song F.L.-Recent Development of Photothermal Agents  PTAs  Based on Small Organic Molecular Dyes-Chem. Bio. Chem.-2020.pdf (小分子光热与分子运动)

The aggregation of small molecular dyes can cause the frequent intermolecular collision. And due to the intermolecular collision, the fluorescence emitting process is inhibited, which leads to the non-radiative transition process.[24a] This was known as aggregation-induced quenching. Therefore it is an effective way to improve the photothermal conversion efficiency by enhancing the packing density and reducing the intermolecular distance of small molecular dyes.[5,42]

Yan X.H.-Biological Photothermal Nanodots Based on Self-Assembly of Peptide−Porphyrin Conjugates for Antitumor Therapy-JACS-2017.pdf (24a文献)

Indocyanine Green J Aggregates in Polymersomes for Near-Infrared Photoacoustic Imaging.pdf (小分子聚集体与光谱)

Nano-sized Indocyanine Green J-aggregate as a One-component Theranostic Agent.pdf (小分子聚集体与光谱)


分子的激发态吸收与双光子吸收

Andraud C.-Excited state absorption a key phenomenon for the improvement of biphotonic based optical limiting at telecommunication wavelengths-PCCP-2012.pdf

Makhal K.-Excited state absorption and relaxation dynamics in a series of heptamethine dyes under femtosecond and nanosecond excitations-Phys. Scr.-2019.pdf

Adv Elect Materials - 2022 - Zee - Numerical Device Model for Organic Light‐Emitting Diodes Based on Thermally Activated.pdf

Advanced Optical Materials - 2021 - Thakur - Quantifying Exciton Annihilation Effects in Thermally Activated Delayed.pdf

Advanced Optical Materials - 2021 - Zee - Origin of the Efficiency Roll‐Off in Single‐Layer Organic Light‐Emitting Diodes.pdf

Advanced Optical Materials - 2023 - Sachnik - Reduction of Non‐Radiative Losses in Trap‐Free Organic Light‐Emitting Diodes.pdf

document.pdf

fchem-09-800027.pdf

PhysRevApplied.18.064002.pdf

PhysRevApplied.21.044037.pdf


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