Development of Plasmonic Attapulgite/Co(Ti)Ox Nanocomposite Using Spent Batteries toward Photothermal Reduction of CO2

Author:

Zuo Shixiang12,Qin Shan1,Xue Bing1,Xu Rong1ORCID,Shi Huiting1,Lu Xiaowang3,Yao Chao12,Gui Haoguan1,Li Xiazhang1ORCID

Affiliation:

1. Jiangsu Key Laboratory of Advanced Catalytic Materials and Technology, Institute of Urban & Rural Mining, Changzhou University, Changzhou 213164, China

2. R&D Center of Xuyi Attapulgite Applied Technology, Changzhou University, Xuyi 211700, China

3. School of Material Science and Engineering, Yancheng Institute of Technology, Yancheng 224051, China

Abstract

The rapid development of the battery industry has brought about a large amount of waste battery pollution. How to realize the high-value utilization of waste batteries is an urgent problem to be solved. Herein, cobalt and titanium compounds (LTCO) were firstly recovered from spent lithium-ion batteries (LIBs) using the carbon thermal reduction approach, and plasmonic attapulgite/Co(Ti)Ox (H-ATP/Co(Ti)Ox) nanocomposites were prepared by the microwave hydrothermal technique. H-ATP had a large specific surface area and enough active sites to capture CO2 molecules. The biochar not only reduced the spinel phase of waste LIBs into metal oxides including Co3O4 and TiO2 but also increased the separation and transmission of the carriers, thereby accelerating the adsorption and reduction of CO2. In addition, H-ATP/Co(Ti)Ox exhibited a localized surface plasmon resonance effect (LSPR) in the visible to near-infrared region and released high-energy hot electrons, enhancing the surface temperature of the catalyst and further improving the catalytic reduction of CO2 with a high CO yield of 14.7 μmol·g−1·h−1. The current work demonstrates the potential for CO2 reduction by taking advantage of natural mineral and spent batteries.

Funder

CNPC Innovation Found

Jiangsu Province Key R&D (Social Development) Program

Natural Science Foundation of the Jiangsu Higher Education Institutions of China

Science and Technology Support Program of Changzhou City

Publisher

MDPI AG

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