| Literature DB >> 28900306 |
Guo Ge1, Xu Yuanlai2, Yang Xinxin1, Wang Fen1, Zhou Fang1, Yu Junxia1, Chi Ruan1.
Abstract
A new kind of silica-based (Crea + TODGA)/SiO2-P adsorbent with high selectivity adsorption for palladium (Pd) was synthesized to examined the applicability for partitioning process of high level liquid waste (HLLW). Adsorption behavior of Pd(II) towards (Crea + TODGA)/SiO2-P adsorbent and stability of adsorbent against HNO3 solution were investigated by batch method. The degradation parts of (Crea + TODGA)/SiO2-P dissolved in liquid phase were estimated by total organic carbon (TOC) analyzer. (Crea + TODGA)/SiO2-P adsorbent showed good selectivity adsorption for Pd(II) and reached equilibrium within 24 hr. The adsorption ability of (Crea + TODGA)/SiO2-P for Pd(II) and the content of TOC leaked decreased with the increasing of HNO3 concentration. In 3 M HNO3, the average of K d values were 85.03 cm3/g and 26.10 cm3/g after contact time one to 28 days at 298 K and 323 K, respectively. While the content of TOC leaked from the adsorbent after 28 days were 1095 ppm (298 K) and 2989 ppm (323 K), respectively. Therefore, the adsorbent showed good stability at 298 K after contact with nitric acid for a long time. All results indicated (Crea + TODGA)/SiO2-P can be proposed as an applicable and efficient absorbent for separation of Pd(II) in 3 M HNO3 at 298 K.Entities:
Year: 2017 PMID: 28900306 PMCID: PMC5595992 DOI: 10.1038/s41598-017-11879-6
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Chemical structural formula of Crea and TODGA two extractants.
Figure 2Magnification of TEM and SEM images of (Crea + TODGA)/SiO2-Padsorbent.
Figure 3TG-DTA results of (Crea + TODGA)/SiO2-P adsorbent.
Figure 4Effect of contact time on the adsorption of Pd(II) towards (Crea + TODGA)/SiO2-P adsorbent at 298 K.
Figure 5Effect of HNO3 concentration on the adsorption of Pd(II) towards (Crea + TODGA)/SiO2-P adsorbent at 298 K and 323 K.
Figure 6Effect of contact time on the adsorption of Pd(II) towards (Crea + TODGA)/SiO2-P adsorbent.
Figure 7Effect of HNO3 concentration on the content of TOC leaked from (Crea + TODGA)/SiO2-P adsorbent.
Figure 8Effect of contact time on the content of TOC leaked from (Crea + TODGA)/SiO2-P adsorbent in 0.1 M and 3 M HNO3 solution at 298 K.
Figure 9Effect of contact time on the content of TOC leaked from (Crea + TODGA)/SiO2-P adsorbent in 0.1 M and 3 M HNO3 solution at 323 K.