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Photochemical Transformation of Poly(butylene adipate- co-terephthalate) and Its Effects on Enzymatic Hydrolyzability.

Publication ,  Journal Article
De Hoe, GX; Zumstein, MT; Getzinger, GJ; Rüegsegger, I; Kohler, H-PE; Maurer-Jones, MA; Sander, M; Hillmyer, MA; McNeill, K
Published in: Environmental science & technology
March 2019

Biodegradable polyesters are being increasingly used to replace conventional, nondegradable polymers in agricultural applications such as plastic film for mulching. For many of these applications, poly(butylene adipate- co-terephthalate) (PBAT) is a promising biodegradable material. However, PBAT is also susceptible to photochemical transformations. To better understand how photochemistry affects the biodegradability of PBAT, we irradiated blown, nonstabilized, transparent PBAT films and studied their enzymatic hydrolysis, which is considered the rate-limiting step in polyester biodegradation. In parallel, we characterized the irradiated PBAT films by dynamic mechanical thermal analysis. The rate of enzymatic PBAT hydrolysis decreased when the density of light-induced cross-links within PBAT exceeded a certain threshold. Mass-spectrometric analysis of the enzymatic hydrolysis products of irradiated PBAT films provided evidence for radical-based cross-linking of two terephthalate units that resulted in the formation of benzophenone-like molecules. In a proof-of-principle experiment, we demonstrated that the addition of photostabilizers to PBAT films mitigated the negative effect of UV irradiation on the enzymatic hydrolyzability of PBAT. This work advances the understanding of light-induced changes on the enzyme-mediated hydrolysis of aliphatic-aromatic polyesters and will therefore have important implications for the development of biodegradable plastics.

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Published In

Environmental science & technology

DOI

EISSN

1520-5851

ISSN

0013-936X

Publication Date

March 2019

Volume

53

Issue

5

Start / End Page

2472 / 2481

Related Subject Headings

  • Polyesters
  • Phthalic Acids
  • Environmental Sciences
  • Alkenes
  • Adipates
 

Citation

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De Hoe, G. X., Zumstein, M. T., Getzinger, G. J., Rüegsegger, I., Kohler, H.-P., Maurer-Jones, M. A., … McNeill, K. (2019). Photochemical Transformation of Poly(butylene adipate- co-terephthalate) and Its Effects on Enzymatic Hydrolyzability. Environmental Science & Technology, 53(5), 2472–2481. https://doi.org/10.1021/acs.est.8b06458
De Hoe, Guilhem X., Michael T. Zumstein, Gordon J. Getzinger, Isabelle Rüegsegger, Hans-Peter E. Kohler, Melissa A. Maurer-Jones, Michael Sander, Marc A. Hillmyer, and Kristopher McNeill. “Photochemical Transformation of Poly(butylene adipate- co-terephthalate) and Its Effects on Enzymatic Hydrolyzability.Environmental Science & Technology 53, no. 5 (March 2019): 2472–81. https://doi.org/10.1021/acs.est.8b06458.
De Hoe GX, Zumstein MT, Getzinger GJ, Rüegsegger I, Kohler H-PE, Maurer-Jones MA, et al. Photochemical Transformation of Poly(butylene adipate- co-terephthalate) and Its Effects on Enzymatic Hydrolyzability. Environmental science & technology. 2019 Mar;53(5):2472–81.
De Hoe, Guilhem X., et al. “Photochemical Transformation of Poly(butylene adipate- co-terephthalate) and Its Effects on Enzymatic Hydrolyzability.Environmental Science & Technology, vol. 53, no. 5, Mar. 2019, pp. 2472–81. Epmc, doi:10.1021/acs.est.8b06458.
De Hoe GX, Zumstein MT, Getzinger GJ, Rüegsegger I, Kohler H-PE, Maurer-Jones MA, Sander M, Hillmyer MA, McNeill K. Photochemical Transformation of Poly(butylene adipate- co-terephthalate) and Its Effects on Enzymatic Hydrolyzability. Environmental science & technology. 2019 Mar;53(5):2472–2481.
Journal cover image

Published In

Environmental science & technology

DOI

EISSN

1520-5851

ISSN

0013-936X

Publication Date

March 2019

Volume

53

Issue

5

Start / End Page

2472 / 2481

Related Subject Headings

  • Polyesters
  • Phthalic Acids
  • Environmental Sciences
  • Alkenes
  • Adipates