含镍、钴的沸石材料的合成及其在柠檬醛选择性加氢中的催化潜力。

IF 2.6 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Beilstein Journal of Nanotechnology Pub Date : 2025-04-14 eCollection Date: 2025-01-01 DOI:10.3762/bjnano.16.40
Inocente Rodríguez-Iznaga, Yailen Costa Marrero, Tania Farias Piñeira, Céline Fontaine, Lexane Paget, Beatriz Concepción Rosabal, Arbelio Penton Madrigal, Vitalii Petranovskii, Gwendoline Lafaye
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引用次数: 0

摘要

采用传统的离子交换(IE)和浸渍(Imp)工艺,对天然沸石进行Ni2+和Co2+氯溶液改性,得到了含镍和钴单金属和双金属体系的沸石材料。特别注意分析了所得材料的阳离子和阴离子组成。评价了柠檬醛选择性加氢反应的催化潜力,重点讨论了不饱和醇的生成。通过XRD和程序升温还原证实,IE工艺主要用Ni2+和Co2+取代了沸石相(斜沸石和丝光沸石混合物)中的Ca2+和Na+,而Imp工艺的金属含量较高(2.0-2.7%),但保留了大量的氯化物(1.9-3.8%)。IE制备的材料氯化物含量可忽略不计(0.02 ~ 0.07%),其比表面积(138 ~ 146 m2/g)大于Imp制备的材料(54 ~ 67 m2/g)。双金属体系表现出Co2+和Ni2+分离阳离子的增强还原性,这归因于协同相互作用削弱了阳离子-框架结合。催化活性测试表明,镍是香茅醛形成的主要原因。在所有材料中,IE制备的双金属CoNiIE催化剂是唯一一种产生不饱和醇的材料,这表明Ni-Co协同作用在其形成过程中发挥了作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Zeolite materials with Ni and Co: synthesis and catalytic potential in the selective hydrogenation of citral.

Zeolitic materials incorporating mono- and bimetallic systems of nickel and cobalt were obtained from natural zeolite modified with Ni2+ and Co2+ chloride solutions through traditional ion exchange (IE) and impregnation (Imp) processes. Special attention was given to analyzing the cationic and anionic composition of the resulting materials. The catalytic potential was evaluated in the selective hydrogenation of citral, focused on the formation of unsaturated alcohols. The IE process replaced mainly Ca2+ and Na+ with Ni2+ and Co2+ cations in the zeolite phases (clinoptilolite and mordenite mix), while Imp resulted in higher metal content (2.0-2.7%) but retained significant amounts of chloride (1.9-3.8%), as confirmed by XRD and temperature-programmed reduction. The materials prepared by IE had negligible chloride content (0.02-0.07%), and their specific surface areas (138-146 m2/g) were greater than those of the materials obtained by Imp (54-67 m2/g). The bimetallic systems exhibited enhanced reducibility of the Co2+ and Ni2+ isolated cations, attributed to synergistic interactions that weakened the cation-framework binding. Catalytic activity tests showed that nickel species were primarily responsible for citronellal formation. Among all materials, the bimetallic CoNiIE catalyst, prepared by IE, was the only one to produce unsaturated alcohols, suggesting that synergistic Ni-Co interactions played a role in their formation.

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来源期刊
Beilstein Journal of Nanotechnology
Beilstein Journal of Nanotechnology NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
5.70
自引率
3.20%
发文量
109
审稿时长
2 months
期刊介绍: The Beilstein Journal of Nanotechnology is an international, peer-reviewed, Open Access journal. It provides a unique platform for rapid publication without any charges (free for author and reader) – Platinum Open Access. The content is freely accessible 365 days a year to any user worldwide. Articles are available online immediately upon publication and are publicly archived in all major repositories. In addition, it provides a platform for publishing thematic issues (theme-based collections of articles) on topical issues in nanoscience and nanotechnology. The journal is published and completely funded by the Beilstein-Institut, a non-profit foundation located in Frankfurt am Main, Germany. The editor-in-chief is Professor Thomas Schimmel – Karlsruhe Institute of Technology. He is supported by more than 20 associate editors who are responsible for a particular subject area within the scope of the journal.
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