费托法
催化作用
掺杂剂
Boosting(机器学习)
材料科学
化学工程
化学
兴奋剂
计算机科学
光电子学
有机化学
选择性
工程类
人工智能
作者
Xincheng Li,Yunhao Liu,Dejian Zhao,Shuaishuai Lyu,Jingwei Ye,Xiaoshen Li,Peipei Wu,Ye Tian,Yingtian Zhang,Tong Ding,Song Song,Qingpeng Cheng,Xingang Li
标识
DOI:10.1007/s12209-024-00382-5
摘要
Abstract Nitrogen (N)-doped carbon materials as metal catalyst supports have attracted significant attention, but the effect of N dopants on catalytic performance remains unclear, especially for complex reaction processes such as Fischer–Tropsch synthesis (FTS). Herein, we engineered ruthenium (Ru) FTS catalysts supported on N-doped carbon overlayers on TiO 2 nanoparticles. By regulating the carbonization temperatures, we successfully controlled the types and contents of N dopants to identify their impacts on metal–support interactions (MSI). Our findings revealed that N dopants establish a favorable surface environment for electron transfer from the support to the Ru species. Moreover, pyridinic N demonstrates the highest electron-donating ability, followed by pyrrolic N and graphitic N. In addition to realizing excellent catalytic stability, strengthening the interaction between Ru sites and N dopants increases the Ru 0 /Ru δ + ratios to enlarge the active site numbers and surface electron density of Ru species to enhance the strength of adsorbed CO. Consequently, it improves the catalyst’s overall performance, encompassing intrinsic and apparent activities, as well as its ability for carbon chain growth. Accordingly, the as-synthesized Ru/TiO 2 @CN-700 catalyst with abundant pyridine N dopants exhibits a superhigh C 5+ time yield of 219.4 mol CO /(mol Ru ·h) and C 5+ selectivity of 85.5%.
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