Effect of Graphene Oxide-Modified CaAl-Layered Double Hydroxides on the Carbon Dioxide Permeation Properties of Fluoroelastomers

Author:

Cong Chuanbo1,Peng Daigang1ORCID,Liu Qingkun1,Yuan Mingyang1,Meng Xiaoyu1,Zhou Qiong1

Affiliation:

1. New Energy and Material College, China University of Petroleum, Beijing 102249, China

Abstract

This work aimed to investigate the CO2 gas barrier and mechanical properties of fluorine rubber nanocomposites filled with Ca/Al layered hydroxide (graphene oxide [GO]/LDH-Ca2Al) modified by GO. GO/LDH-Ca2Al nanocomposite fillers were prepared by depositing Ca/Al layered hydroxide (LDH-Ca2Al) into the surface of alkalized GO (Al-GO). The prepared GO/LDH-Ca2Al nanocomposite fillers and complexes were characterized by Fourier infrared spectroscopy (FTIR), X-ray diffraction (XRD), scanning electron microscopy (SEM), and transmission electron microscopy (TEM) for structural and micromorphological characterization. The results showed that GO/LDH-Ca2Al was successfully prepared with strong interactions between Al-GO and LDH, and the compatibility of GO/LDH-Ca2Al nanocomposite fillers with the polymer was significantly improved compared with that of LDH-Ca2Al. Consequently, both the fracture strength (σb) and strain (εb) of GO/LDH-Ca2Al nanocomplexes remarkably increased, and they exhibited excellent mechanical properties. Differential scanning calorimetry and thermogravimetric analysis were used to characterize the thermal stability of GO/LDH-Ca2Al nanocomposite fillers, and GO/LDH-Ca2Al nanocomposite fillers have better thermal stability than LDH-Ca2Al. The reaction products (S-LDH-Ca2Al and S-GO-Ca2Al) of LDH-Ca2Al and GO/LDH-Ca2Al with CO2 were characterized using XRD and TGA, respectively, and the results show that LDH-Ca2Al reacts readily and chemically with CO2, resulting in a lower diffusion coefficient of CO2 in the LDH-Ca2Al nanocomplexes than that of the GO/LDH-Ca2Al nanocomplexes and leading to the destruction of the laminar structure of LDH-Ca2Al, while GO/LDH-Ca2Al has better CO2 resistance stability. GO/LDH-Ca2Al nanocomplexes exhibited a reduced content of hydroxyl groups with pro-CO2 nature exposed on the surface of LDH-Ca2Al, improving the interfacial interaction between the nanofillers and the rubber matrix and enhancing the dispersion of GO/LDH-Ca2Al in the polymers. Moreover, CO2 in the soluble GO/LDH-Ca2Al nanocomposites was significantly reduced, while the diffusion properties demonstrated weak temperature dependence on solubility. The mechanism of the CO2 gas barrier of polymers filled with GO/LDH-Ca2Al was proposed on the basis of the Arrhenius equation.

Funder

China National Key R&D Program “Key Technology Research on Non-metallic Non-bonded Flexible Mixing Pipe for Deep Sea Mining”

Research and Development of Key Materials for Non-metallic Flexible Mixing Pipe for Deep Sea Mining

Publisher

MDPI AG

Subject

Polymers and Plastics,General Chemistry

Reference63 articles.

1. Atmospheric CO2 capture by algae: Negative carbon dioxide emission path;Moreira;Bioresour. Technol.,2016

2. CO2 Accounting and Risk Analysis for CO2 Sequestration at Enhanced Oil Recovery Sites;Dai;Environ. Sci. Technol.,2016

3. A comprehensive review on the recent advancements in natural rubber nanocomposites;Sethulekshmi;Int. J. Biol. Macromol.,2022

4. Gent, A.N. (2013). The Science and Technology of Rubber, Academic Press.

5. Transport performance in novel elastomer nanocomposites: Mechanism, design and control;Guo;Prog. Polym. Sci.,2016

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