| Literature DB >> 30287749 |
Jung Joon Lee1, Mi Yeon Cho2, Bo-Hyun Kim3, Sunjong Lee4.
Abstract
Development of eco-friendly polymer foams is an urgent research topic because of the serious environmental pollution caused by trash heaps and the time-release of harmful gases. Polymer PVC foam using azodicarbonamide as a chemical foaming agent has been highly requested for further improvement due to the residual ammonia gas that continuously leaks out. Here, we demonstrate an effective and costless process for the reduction of releasing ammonia from PVC foams using the overcoat technology of deodorants. We have selected four candidate materials, gelite, zeolite, terra alba, and fumed silica as original materials for the deodorant of ammonia, and they showed an ammonia deodorization rate (ADR) of over 80% without any treatment except the fumed silica. When we over-coated the UV-curing agent mixed deodorants on the PVC foams (thickness ~300 µm), the ADR of the terra alba and zeolite complex foams was remarkably higher than 90%, however, the specific gravity and chromaticity were not changed within 20%. This indicates that our developed process using deodorant layer for ammonia reduction has a high potential for the production of eco-friendly polymer foams.Entities:
Keywords: absorption; ammonia; deodorant; eco-friendly; foam; harmful gas
Year: 2018 PMID: 30287749 PMCID: PMC6213404 DOI: 10.3390/ma11101898
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1Illustration of the polymer foams usage and the time-releasing gases from the foams in the living environment.
Figure 2Schematics of experiments. (A) Over-coating process of deodorant layer on PVC foam. Inset: Scanning electron microscope (SEM) images of the surface and cross section of PVC foam before over-coating of the deodorant layer. (B) Ammonia emission/deodorization rate test using a Tedlar bag and the PVC foam after over-coating and absorption of ammonia gas by the deodorant layer.
Figure 3Deodorants and deodorization characteristics. (A) SEM images of original deodorants. Inset: photo images of original deodorant powders. (B,C) Ammonia deodorization rate of the original deodorants depending on the deodorization time at 25 °C (B) and 80 °C (C).
Figure 4SEM images of the surface (A) and the cross section (B) of the complex foams after over-coated by the deodorant layers.
Figure 5Photo images of the forms over-coated by the deodorants. (A) Reference (B) Gelite (C) HCl-gelite (D) Zeolite (E) Terra alba.
Specific gravity and chromaticity of the foams over-coated by the deodorants. L*: lightness, b*: yellowness.
| Deodorant | Specific Gravity | Chromaticity | |
|---|---|---|---|
| L* | B* | ||
| None (Referance) | 0.160 | 52.73 | 4.66 |
| Gelite | 0.177 (1.03) | 27.29 | 18.66 |
| HCl-gelite | 0.174 (0.91) | 59.29 | 10.76 |
| Zeolite | 0.175 (0.92) | 65.89 | 14.13 |
| Terra alba | 0.163 (0.80) | 70.33 | 5.03 |
() Specific gravity of deodorant only.
Figure 6Relative ammonia reduction rate and emission concentration of the foams over-coated by the deodorants.