Direct Synthesis of Amino Acids from Plastic, Air, and Water

Y Yingxin Ma (Department of Chemistry College of Sciences Nanjing Agricultural University Nanjing 210095 China) X Xuyun Guo M Mengxiang Han (Department of Chemistry College of Sciences Nanjing Agricultural University Nanjing 210095 China) J Jizhe Ma (Department of Chemistry College of Sciences Nanjing Agricultural University Nanjing 210095 China) M Mingzhu Han (Department of Chemistry College of Sciences Nanjing Agricultural University Nanjing 210095 China) L Lejuan Cai (Songshan Lake Materials Laboratory) V Valeria Nicolosi (CRANN & AMBER Research Centres and School of Chemistry) W Wenlong Wang (Beijing National Laboratory for Condensed Matter Physics and Institute of Physics, Chinese Academy of Sciences) W Weiliang Dong M Min Jiang B Bocheng Qiu (Department of Chemistry College of Sciences Nanjing Agricultural University Nanjing 210095 China)

Abstract

Abstract Amino acids as fundamental building blocks exhibit versatile applications spanning from food science to pharmaceutical development. Conventional biological and chemical synthetic approaches suffer from low efficiency and elevated energy demands. While emerging thermocatalysis and photocatalysis strategies offer promising alternatives, their environmental sustainability is substantially constrained by their reliance on Haber–Bosch‐derived ammonia as a nitrogen source, which contributes to a significant carbon footprint. Here we developed a hybrid thermochemical‐plasma‐electrochemical system for sustainable alanine synthesis directly from end‐of‐life polylactic acid (PLA) plastic using atmospheric nitrogen as a nitrogen source. The synthetic pathway for alanine production initiates with the thermocatalytic oxidative depolymerization of PLA to pyruvic acid (PA) in aqueous medium under mild conditions (140 °C, 1 MPa air), utilizing a Pt/SiO 2 catalyst with high impurity tolerance. Concurrently, a nitrate‐enriched solution is generated through plasma‐mediated activation of air and water under ambient conditions. Subsequently, the PA and nitrate solutions are mixed and directly introduced to the electrochemical reactor. We employ a strain‐engineered CuBi alloy electrocatalyst capable of stably catalyzing alanine production via co‐electrolysis of PA and nitrate. This integrated process establishes a sustainable pathway to valorize low‐cost feedstocks into high‐value commodity chemicals using renewable energy while mitigating plastic pollution.

Article Details

Volume / Issue Vol. 64, Issue 39
Published September 22, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (11)

Y

Yingxin Ma

Department of Chemistry College of Sciences Nanjing Agricultural University Nanjing 210095 China

X

Xuyun Guo

M

Mengxiang Han

Department of Chemistry College of Sciences Nanjing Agricultural University Nanjing 210095 China

J

Jizhe Ma

Department of Chemistry College of Sciences Nanjing Agricultural University Nanjing 210095 China

M

Mingzhu Han

Department of Chemistry College of Sciences Nanjing Agricultural University Nanjing 210095 China

L

Lejuan Cai

Songshan Lake Materials Laboratory

V

Valeria Nicolosi

CRANN & AMBER Research Centres and School of Chemistry

W

Wenlong Wang

Beijing National Laboratory for Condensed Matter Physics and Institute of Physics, Chinese Academy of Sciences

W

Weiliang Dong

M

Min Jiang

B

Bocheng Qiu

Department of Chemistry College of Sciences Nanjing Agricultural University Nanjing 210095 China