Article In: orcid

Bimetallic Nanoparticles Embedded in P,N,Br‐Codoped Carbon Matrices Derived from Heterometallic‐Organophosphine Frameworks as Electrode Materials for Asymmetric Supercapacitors

Batteries & Supercaps

Abdallah G. Mahmoud; Jéssica V. Nardeli; Armando J. L. Pombeiro2024Chemistry Europe

Key information

Authors:

Abdallah G. Mahmoud (Abdallah Gamal Abdallah Mahmoud); Jéssica V. Nardeli; Maria João Ferreira; Ana M. Ferraria; Ana M. Botelho do Rego; M. Fátima C. Guedes da Silva (Maria de Fátima Costa Guedes da Silva); Armando J. L. Pombeiro (Armando José Latourrette de Oliveira Pombeiro)

Published in

March 2024

Abstract

An unprecedented method has been developed to obtain heterometallic-organophosphine frameworks (HMOPFs) through a solvent-free, three-component mechanochemical process. In a ball mill, mixing copper (I) bromide with zinc (II), nickel (II) or copper (II) acetates, in the presence of (PTA-CH2-C6H4-p-COOH) Br (PTA is 1,3,5-triaza-7-phosphaadamantane) as an organic linker, has produced the corresponding HMOPFs based on Cu+-Zn2+, Cu+-Ni2+ and Cu+-Cu2+, respectively. The pyrolysis of HMOPFs resulted in bimetallic nanoparticles of transition metal phosphide and phosphate embedded in multi-P,N,Br-codoped carbon matrices (Cu−M@C). Due to the utilization of an aminophosphine organic linker, this HMOPFs-derived approach typifies an eco-friendly synthesis of carbon confined transition metal phosphides or phosphates. It avoids the common conventional methods that involves phosphorylation using large amounts of additional P sources, which leads to an intensive release of the flammable and poisonous phosphine gas. Also, the presence of Br at the organic linker eliminates the need for using bromine vapours to obtain halogen-doped carbon matrices. The Cu−M@C nanocomposites were tested as negative electrode materials for asymmetric supercapacitors. Electrochemical tests included cyclic voltammetry and galvanostatic charge-discharge experiments, which revealed the Cu−Zn@C electrode with a higher potential window as compared to Cu−Ni@C and Cu−Cu@C electrodes, achieving a rate performance of 60 % and high coulombic efficiency.

Publication details

Authors in the community:

Publisher

Chemistry Europe

Title of the publication container

Batteries & Supercaps

Volume

7

Issue

3

Fields of Science and Technology (FOS)

chemical-sciences - Chemical sciences

Publication language (ISO code)

eng - English

Rights type:

Only metadata available