材料科学
对苯二甲酸
催化作用
格式化
键裂
乙二醇
基质(水族馆)
氧化物
选择性
环氧乙烷
化学工程
乙烯
脱氢
过电位
乙醇酸
无机化学
尖晶石
氧化还原
光化学
聚对苯二甲酸乙二醇酯
对苯二甲酸二甲酯
氧气
润湿
热稳定性
催化氧化
甲醇
部分氧化
辐照
高分子化学
作者
Jangyun Kim,Jayaraman Theerthagiri,Nuttapon Yodsin,Juhyeon Park,Piyapa Junmon,Myong Yong Choi
摘要
ABSTRACT Herein, we present a rapid and one‐step CO 2 laser irradiation strategy that stabilizes Ru single atoms (RuSAs) on two‐dimensional Co 3 O 4 nanosheets (RuSA/Co 3 O 4 ) within 3 min under ambient conditions. The Co 3 O 4 substrate was derived from microwave‐synthesized α‐Co(OH) 2 (2.45 GHz, 1 min) followed by thermal oxidation at 350°C for 1 h, affording a spinel oxide with ordered Co 2+ /Co 3+ sites. Distinct from carbon‐supported single‐atom catalysts (SACs) systems, the oxide support functions as both an anchoring matrix and active redox component during the ethylene glycol oxidation reaction (EGOR). Combined experimental and theoretical analyses reveal that α‐Co(OH) 2 promotes C 2 ‐selective C─H bond oxidation to glycolate, Co 3 O 4 favors C─C bond cleavage toward C 1 products (formate), and RuSA/Co 3 O 4 enables tunable and balanced C 1 /C 2 product formation during the EGOR, highlighting the role of RuSA sites in regulating EGOR pathways with excellent stability over 100 h. Beyond the EGOR, practical polyethylene terephthalate (PET) waste upcycling was demonstrated using PET hydrolysate feedstock; the RuSA/Co 3 O 4 catalyst achieves high recovery yields of terephthalic acid (88.0%), formate as potassium diformate (90.6%), and glycolate as potassium glycolate glycolic acid (91.3%). This study elucidates laser‐induced defect–SA interactions for rapid SAC fabrication and establishes an integrated platform coupling SA engineering with plastic waste upcycling.
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