Nanostructured Carbon Nitrides for CO2 Capture and Conversion

材料科学 光催化 氮化碳 纳米技术 表面改性 碳纤维 电催化剂 化学工程 带隙 混合材料 原材料 共价键 催化作用 石墨氮化碳 复合数 有机化学 电化学 复合材料 化学 光电子学 物理化学 工程类 电极
作者
Siddulu Naidu Talapaneni,Gurwinder Singh,In Young Kim,Khalid Albahily,Ala’a H. Al‐Muhtaseb,Ajay Karakoti,Ehsan Tavakkoli,Ajayan Vinu
出处
期刊:Advanced Materials [Wiley]
卷期号:32 (18) 被引量:254
标识
DOI:10.1002/adma.201904635
摘要

Abstract Carbon nitride (CN), a 2D material composed of only carbon (C) and nitrogen (N), which are linked by strong covalent bonds, has been used as a metal‐devoid and visible‐light‐active photocatalyst owing to its magnificent optoelectronic and physicochemical properties including suitable bandgap, adjustable energy‐band positions, tailor‐made surface functionalities, low cost, metal‐free nature, and high thermal, chemical, and mechanical stabilities. CN‐based materials possess a lot of advantages over conventional metal‐based inorganic photocatalysts including ease of synthesis and processing, versatile functionalization or doping, flexibility for surface engineering, low cost, sustainability, and recyclability without any leaching of toxic metals from photocorrosion. Carbon nitrides and their hybrid materials have emerged as attractive candidates for CO 2 capture and its reduction into clean and green low‐carbon fuels and valuable chemical feedstock by using sustainable and intermittent renewable energy sources of sunlight and electricity through the heterogeneous photo(electro)catalysis. Here, the latest research results in this field are summarized, including implementation of novel functionalized nanostructured CNs and their hybrid heterostructures in meeting the stringent requirements to raise the efficiency of the CO 2 reduction process by using state‐of‐the‐art photocatalysis, electrocatalysis, photoelectrocatalysis, and feedstock reactions. The research in this field is primarily focused on advancement in the synthesis of nanostructured and functionalized CN‐based hybrid heterostructured materials. More importantly, the recent past has seen a surge in studies focusing significantly on exploring the mechanism of their application perspectives, which include the behavior of the materials for the absorption of light, charge separation, and pathways for the transport of CO 2 during the reduction process.
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