4.7 Article

A croconate-directed supramolecular self-healable Cd(ii)-metallogel with dispersed 2D-nanosheets of hexagonal boron nitride: a comparative outcome of the charge-transport phenomena and non-linear rectifying behaviour of semiconducting diodes

Journal

DALTON TRANSACTIONS
Volume 51, Issue 23, Pages 9007-9016

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d2dt01206e

Keywords

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Funding

  1. WBDSTBT (Govt. of West Bengal, India) [14 (Sanc.)/ST/P/ST/15G-18/2018]
  2. CSIR, New Delhi [09/202(0079)/2018-EMR-I]
  3. DST-INSPIRE [IF160542]
  4. SERB-DST, Govt. of India [EMR/2016/005387]

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The use of croconic acid disodium salt as an organic gelator with Cd(ii) salt to obtain an efficient soft-scaffold supramolecular self-healable metallogel was investigated. Two-dimensional nanosheets of hexagonal boron nitride were incorporated within the gel network to obtain a 2D nanosheet dispersed metallogel. Microstructural and spectroscopic analysis were performed to understand the morphology and formation pathway of the metallogel. The metallogel showed fascinating electronic-charge transportation and the presence of hexagonal boron nitride nanosheets modulated its non-linear rectifying feature.
The use of croconic acid disodium salt (CADS) as an organic gelator with Cd(ii) salt to obtain an efficient soft-scaffold supramolecular self-healable metallogel (Cd-CADS) in N,N-dimethyl formamide (DMF) media was investigated following an ultrasonication technique. The experimentally scrutinized rheological values of the fabricated metallogel not only revealed the visco-elastic property and mechanical stiffness, but also exposed the self-healable behaviour of the gel material. Two-dimensional (2D) nanosheets of hexagonal boron nitride (h-BN) were incorporated within the gel network to obtain a 2D nanosheet dispersed metallogel of Cd(ii) croconate (h-BN@Cd-CADS). The microstructural investigations of the original gel network and hexagonal boron nitride (h-BN) 2D nanosheet dispersed gel-network were performed through field emission scanning electron microscopy (FESEM) and established the interconnecting rod-like fibrous type morphological patterns and inter-connected hexagonal type rod-shaped architecture pattern, respectively. High resolution transmission electron microscopy (HRTEM) was used to visualize the morphological distinction of the Cd-CADS metallogel with the h-BN 2D nanosheets. The infrared spectral (FT-IR) outputs helped to identify the formation pathway to construct the semi-solid self-healing flexible metallogel and h-BN 2D nanosheet dispersed metallogel nanocomposite, respectively. Fascinating electronic-charge transportation was revealed in the as-fabricated Cd-CADS and h-BN@Cd-CADS metallogel-based devices. Furthermore, h-BN 2D-nanosheet-directed modulation of the non-linear rectifying feature of the supramolecular Cd-CADS-metallogel was observed, with the h-BN@Cd-CADS metallogel showing a greater rectifying property, implying that it has a higher conductivity compared to the Cd-CADS metallogel.

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