Upcycling of Waste Plastics into Carboxylic Acids for Biodegradable Surfactants

H Houqian Li (Department of Chemical and Biological Engineering University of Wisconsin‐Madison Madison WI 53706 USA) B Brandon W. Tipton (Department of Chemical and Biological Engineering University of Wisconsin‐Madison Madison WI 53706 USA) H Hesham Aboukeila (School of Sustainable Chemical Biological and Materials Engineering University of Oklahoma Norman OK 73019 USA) E Enner A. Mendoza (Department of Chemical and Biological Engineering University of Wisconsin‐Madison Madison WI 53706 USA) A Abdulrahman Alzailaie (Department of Chemical and Biological Engineering University of Wisconsin‐Madison Madison WI 53706 USA) T Tianwei Yan (Department of Chemical and Biological Engineering University of Wisconsin‐Madison Madison WI 53706 USA) C Clark R. Landis (Department of Chemistry University of Wisconsin‐Madison Madison WI 53706 USA) J Javen S. Weston (Department of Chemical Engineering University of Tulsa Tulsa OK 74104 USA) B Brian P. Grady (School of Sustainable Chemical Biological and Materials Engineering University of Oklahoma Norman OK 73019 USA) G George W. Huber (Department of Chemical and Biological Engineering University of Wisconsin‐Madison Madison WI 53706 USA)

Abstract

Abstract This work outlines a process for producing high‐purity (>95%) carboxylate surfactants from post‐consumer recycled high‐density polyethylene (PCR‐HDPE). The approach involves the thermal depolymerization of PCR‐HDPE via pyrolysis, followed by fractional distillation to isolate C9–C14 olefins. These olefins undergo hydroformylation using cobalt carbonyl catalysts to generate aldehydes, which are subsequently oxidized to carboxylic acids using Pinnick oxidation under mild aqueous‐phase conditions. Neutralization of the resulting carboxylic acids with sodium hydroxide produces plastic‐derived carboxylate surfactants (PDCs) in the form of sodium carboxylates. Subsequent purification steps ensure surfactant‐grade purity and enable accurate assessment of physicochemical properties. The resulting PDCs are evaluated for critical micelle concentration (CMC), foamability, surface tension reduction, and calcium ion tolerance, demonstrating competitive behavior with conventional anionic carboxylate surfactants. This route provides a sustainable alternative for surfactant production, reducing reliance on fossil‐derived feedstocks and valorizing plastic waste streams through chemical upcycling.

Article Details

Volume / Issue Vol. 64, Issue 50
Published December 08, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

H

Houqian Li

Department of Chemical and Biological Engineering University of Wisconsin‐Madison Madison WI 53706 USA

B

Brandon W. Tipton

Department of Chemical and Biological Engineering University of Wisconsin‐Madison Madison WI 53706 USA

H

Hesham Aboukeila

School of Sustainable Chemical Biological and Materials Engineering University of Oklahoma Norman OK 73019 USA

E

Enner A. Mendoza

Department of Chemical and Biological Engineering University of Wisconsin‐Madison Madison WI 53706 USA

A

Abdulrahman Alzailaie

Department of Chemical and Biological Engineering University of Wisconsin‐Madison Madison WI 53706 USA

T

Tianwei Yan

Department of Chemical and Biological Engineering University of Wisconsin‐Madison Madison WI 53706 USA

C

Clark R. Landis

Department of Chemistry University of Wisconsin‐Madison Madison WI 53706 USA

J

Javen S. Weston

Department of Chemical Engineering University of Tulsa Tulsa OK 74104 USA

B

Brian P. Grady

School of Sustainable Chemical Biological and Materials Engineering University of Oklahoma Norman OK 73019 USA

G

George W. Huber

Department of Chemical and Biological Engineering University of Wisconsin‐Madison Madison WI 53706 USA