Unveiling the promoting mechanism of N-doping in porous biochar for formaldehyde adsorption: experimental and DFT studies

IF 4.6 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
RSC Advances Pub Date : 2025-10-13 DOI:10.1039/D5RA05130D
Ning Xiang, Shaohua Wu, Qingsong Zhao, Yaqin Hou, Zhanggen Huang and Qiaoyan Li
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Abstract

Nitrogen (N) doping in porous carbon adsorbents has been proven to be one of the effective strategies to enhance formaldehyde (HCHO) adsorption performance. However, the intrinsic promoting mechanism of specific nitrogen species (pyridinic-N, pyrrolic-N, and graphitic-N) remains unclear, hindering the rational design of porous carbon adsorbents. Herein, we prepared a series of nitrogen-doped porous biochars with alterable N species via one-step pyrolysis of urea and waste jujube pits in different proportions (BCU-x, x = 0–3), and the correlation between specific N species and HCHO adsorption performance was established for the first time. Experimental results show that the amount of surface pyrrolic-N (N-5) groups was the dominant factor in determining HCHO adsorption performance. Combined with DFT calculation results, it was revealed that the introduction of pyrrolic-N species significantly increased the inhomogeneity of electrostatic potential (ESP) distribution and the maximum absolute ESP value of carbonaceous models (increased from 15.94 kcal mol−1 to 50.15 kcal mol−1) and consequently enhanced the affinity between polar HCHO and carbonaceous models (varied from −4.98 kcal mol−1 to −7.85 kcal mol−1). Specifically, the O atom of HCHO tended to interact with the H atom attached to the pyrrolic-N moiety, and a hydrogen bond interaction (N–H⋯OCH2) existed. Therefore, the BCU-2 sample with the richest pyrrolic-N species exhibited the optimal HCHO adsorption capacity, of up to 21.25 mg g−1, which was nearly 3.5 times higher than that of pristine biochar. This study clarifies the intrinsic promotion mechanism of specific nitrogen species in HCHO adsorption and provides general guidelines for the further design of high-performance carbonaceous adsorbents for HCHO removal.

Abstract Image

揭示多孔生物炭中n掺杂对甲醛吸附的促进机制:实验和DFT研究。
在多孔碳吸附剂中掺杂氮是提高甲醛吸附性能的有效方法之一。然而,特定氮种(吡啶- n、吡咯- n和石墨- n)的内在促进机制尚不清楚,这阻碍了多孔碳吸附剂的合理设计。本文以尿素和废红豆为原料,按不同比例(BCU-x, x = 0-3)一步热解制备了一系列氮掺杂的多孔生物炭,并首次建立了特定氮种与HCHO吸附性能的相关性。实验结果表明,表面吡咯- n (N-5)基团的数量是决定HCHO吸附性能的主要因素。结合DFT计算结果,发现吡啶- n的引入显著增加了电电位分布的不均匀性,并使碳质模型的最大绝对电电位(ESP)值从15.94 kcal mol-1增加到50.15 kcal mol-1,从而增强了极性HCHO与碳质模型之间的亲和力(从-4.98 kcal mol-1增加到-7.85 kcal mol-1)。具体来说,HCHO的O原子倾向于与附在pyrrol - n部分上的H原子相互作用,并且存在氢键相互作用(N-H⋯O[双键,长度为m-dash]CH2)。因此,pyrorol - n最丰富的BCU-2样品具有最佳的HCHO吸附量,高达21.25 mg g-1,比原始生物炭高出近3.5倍。本研究阐明了特定氮种对HCHO吸附的内在促进机制,为进一步设计高性能碳质吸附剂去除HCHO提供了一般指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
RSC Advances
RSC Advances chemical sciences-
CiteScore
7.50
自引率
2.60%
发文量
3116
审稿时长
1.6 months
期刊介绍: An international, peer-reviewed journal covering all of the chemical sciences, including multidisciplinary and emerging areas. RSC Advances is a gold open access journal allowing researchers free access to research articles, and offering an affordable open access publishing option for authors around the world.
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