Abstract

The possibility of obtaining calcium carbonate nanoparticles from Achatina fulica shell through mechanochemical synthesis to be used as a modifying filler for polymer materials has been studied. The process of obtaining calcium carbonate nanopowders includes two stages: dry and wet milling processes. At the first stage, the collected shell was dry milled and undergone mechanical sieving to ≤50 μm. The shell particles were wet milled afterward with four different solvents (water, methanol, ethylene glycol, and ethanol) and washed using the decantation method. The particle size and shape were investigated on transmission electron microscopy, and twenty-three particle counts were examined using an iTEM image analyzer. Significantly, nanoparticle sizes ranging from 11.56 to 180.06 nm of calcium carbonate was achieved after the dry and wet milling processes. The size particles collected vary with the different solvents used, and calcium carbonate synthesis with ethanol offered the smallest organic particle size with the average size ranging within 13.48-42.90 nm. The effect of the solvent on the chemical characteristics such as the functional group, elemental composition, and carbonate ion of calcium carbonate nanopowders obtained from Achatina fulica shell was investigated. The chemical characterization was analyzed using Fourier transform infrared (FTIR) and a scanning electron microscope (SEM) equipped with an energy-dispersive spectroscope (EDX). The effect of milling procedures on the mechanical properties such as tensile strength, stiffness, and hardness of prepared nanocomposites was also determined. This technique has shown that calcium carbonate nanoparticles can be produced at low cost, with low agglomeration, uniformity of crystal morphology, and structure from Achatina fulica shell. It also proved that the solvents used for milling have no adverse effect on the chemical properties of the nano-CaCO3 produced. The loading of calcium carbonate nanoparticles, wet milled with different solvents, exhibited different mechanical properties, and nanocomposites filled with methanol-milled nano-CaCO3 offered superior mechanical properties.

Highlights

  • Nanosized calcium carbonate (CaCO3) has received noteworthy consideration for several applications due to its availability, advantageous mechanical strength, and thermal stability [1]

  • The elemental composition of the raw snail shell and CaCO3 nanoparticle synthesized with different solvents such as ethylene glycol, ethanol, water, and methanol is shown in this was lesser compared to the synthesized nano-CaCO3 that has 100 wt.% CaCO3 irrespective of the solvent used for the wet milling process

  • Nano-CaCO3 was successfully synthesized from Achatina fulica shell

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Summary

Introduction

Nanosized calcium carbonate (CaCO3) has received noteworthy consideration for several applications due to its availability, advantageous mechanical strength, and thermal stability [1]. In recent decades, calcium carbonate (CaCO3) of different particle sizes extracted from natural resources such as bones, horns, and animal shells is used as reinforcement to enhance thermal stability, degradation, strength, and physical properties of polymeric materials [8]. This results in a bimodal size distribution, which weakens the bond in nanocomposites [32,33,34,35] Having this in mind, this present study deals with the optimization of milling procedures for synthesizing nano-CaCO3 from Achatina fulica shell through mechanochemical (wet milling) techniques using different solvents. This present study deals with the optimization of milling procedures for synthesizing nano-CaCO3 from Achatina fulica shell through mechanochemical (wet milling) techniques using different solvents It further investigates the consequence of the solvent on the reinforcement effect of the nano-CaCO3 on polymeric material

Experimental Details
Characterization Approaches
Result and Discussion
Findings
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Future Work
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