Interface‐Engineered Electron‐Deficient Nickel Species for Efficient Depolymerization of Polyethylene Terephthalate
Abstract
ABSTRACT Polyethylene terephthalate (PET) is the most abundant polyester plastic. Its chemical recycling mainly relies on homogeneous catalysis, often suffering from difficult catalyst separation and substantial waste generation. Previous work using heterogeneous catalysts has primarily focused on increasing Lewis acidity through variation of metal oxide types to improve performance, but catalyst activity remains limited. Here, we adopt an alternative strategy for modulating Lewis acidity with enhanced control by systematically tuning electronic properties of structurally versatile Ni active sites. Nickel can readily form intermetallics and layered double hydroxide (LDH) derivatives, providing substantial flexibility for modulating its electronic structure. We establish an electron‐deficiency–dependent activity framework and discover a Ni 3 Ga/NiAlO x catalyst that exhibits unexpectedly high activity, surpassing more strongly Lewis‐acidic fully oxidized Ni species and delivering an order‐of‐magnitude activity enhancement compared with conventional Lewis‐acidic oxides. This high activity originates from electron‐deficient interfacial Ni sites where electron withdrawal from O in LDH‐derived NiAlO x and electron donation from Ga in intermetallic Ni 3 Ga result in appropriate Lewis acidity, enabling near‐quantitative dimethyl terephthalate recovery from post‐consumer PET. Theoretical and experimental validation suggests that such bidirectional electronic modulation balances substrate activation and product desorption, thereby maximizing catalytic efficiency. The catalyst is prepared via an industrially‐established co‐precipitation method and is readily scalable.
Article Details
Authors (13)
Sensen Xing
State Key Laboratory of Chemical Engineering and Low‐Carbon Technology East China University of Science and Technology Shanghai China
Wenjie Wang
State Key Laboratory of Chemical Engineering and Low-Carbon Technology, School of Chemical Engineering, East China University of Science and Technology, 130 Meilong Road, Shanghai 200237, China
Xiangxue Zhang
State Key Laboratory of Chemical Engineering, East China University of Science and Technology, 130 Meilong Road, Shanghai 200237, China
Weixiao Sun
State Key Laboratory of Chemical Engineering and Low‐Carbon Technology East China University of Science and Technology Shanghai China
Xiaohu Ge
State Key Laboratory of Chemical Engineering and Low-Carbon Technology, School of Chemical Engineering, East China University of Science and Technology, 130 Meilong Road, Shanghai 200237, China
Weizhong Zheng
School of Chemical Engineering
Yueqiang Cao
State Key Laboratory of Chemical Engineering and Low-Carbon Technology, School of Chemical Engineering, East China University of Science and Technology, 130 Meilong Road, Shanghai 200237, China
Wenyao Chen
State Key Laboratory of Chemical Engineering and Low-carbon Technology
Gang Qian
State Key Laboratory of Chemical Engineering and Low-carbon Technology
Xuezhi Duan
State Key Laboratory of Chemical Engineering and Low-carbon Technology
Xinggui Zhou
State Key Laboratory of Chemical Engineering and Low-carbon Technology
De Chen
Department of Chemical Engineering
Jing Zhang