4.6 Article

Photooxidation of PC60BM: new insights from spectroscopy

期刊

PHYSICAL CHEMISTRY CHEMICAL PHYSICS
卷 24, 期 42, 页码 25753-25766

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d2cp03514f

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资金

  1. Swedish Research council [2018-07152, 2015-03778, 2014-03776]
  2. Swedish Governmental Agency for Innovation Systems [2018-04969]
  3. Formas [2019-02496]
  4. Swedish Energy Council [48598-1]
  5. Knut and Alice Wallenberg Foundation [KAW-2016.0059, KAW-2013.0020]
  6. Goran Gustafsson Foundation for Research in Natural Sciences and Medicine
  7. Carl Trygger Foundation
  8. Deutsche Forschungsgemeinschaft [239543752]
  9. Swedish Research Council [2014-03776, 2015-03778] Funding Source: Swedish Research Council

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This joint experimental and theoretical spectroscopy study aims to improve the understanding of the effect of photooxidation on the electronic structure of the fullerene derivative PC60BM. The researchers used X-ray Photoelectron Spectroscopy, Near-edge X-ray Absorption Fine Structure spectroscopy, and Fourier Transform Infrared Spectroscopy to analyze thin films of PC60BM before and after intentional exposure to simulated sunlight. The results of the study confirmed that photooxidation disrupted the conjugation of the fullerene cage and caused the formation of various oxidation products.
This joint experimental-theoretical spectroscopy study of the fullerene derivative PC60BM ([6,6]-phenyl-C-60-butyric acid methyl ester) aims to improve the understanding of the effect of photooxidation on its electronic structure. We have studied spin-coated thin films of PC60BM by X-ray Photoelectron Spectroscopy (XPS), Near-edge X-ray Absorption Fine Structure (NEXAFS) spectroscopy, and Fourier Transform Infrared Spectroscopy (FTIR), before and after intentional exposure to simulated sunlight in air for different lengths of time. The pi* resonance in the C1s NEXAFS spectrum was found to be a very sensitive probe for the early changes to the fullerene cage, while FTIR spectra, in combination with O1s NEXAFS spectra, enabled the identification of the oxidation products. The changes observed in the spectra obtained by these complementary methods were compared with the corresponding Density Functional Theory (DFT) calculated single-molecule spectra of a large set of in silico generated oxidation products of PC60BM where oxygen atoms were attached to the C-60 cage. This comparison confirms that photooxidation of PC60BM disrupts the conjugation of the fullerene cage by a transition from sp(2) to sp(3)-hybridized carbon and causes the formation of several oxidation products, earlier proposed for C-60. The agreement between experimental and calculated IR spectra suggests moreover the presence of dicarbonyl and anhydride structures on the fullerene cage, in combination with cage opening at the adsorption site. By including PC60BM with physisorbed O-2 molecules on the cage in our theoretical description in order to model oxygen diffused through the film, the experimental O1s XPS and O1s NEXAFS spectra could be reproduced.

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