In order to meet the increasing energy demand and alleviate global warming, nuclear power, as a relative clean energy, has been receiving attention again. However, the water consumption of nuclear power plants (NPPs) is much greater than conventional ...
In order to meet the increasing energy demand and alleviate global warming, nuclear power, as a relative clean energy, has been receiving attention again. However, the water consumption of nuclear power plants (NPPs) is much greater than conventional coal-fired power plants with the same capacity. Of greater concern is the resulting wastewater, with pH values ranging from extremely acidic to strongly alkaline, which contains a multitude of radionuclides. Among them, 137Cs, as the major fission product, poses a threat to human health due to its production of gamma rays and high-energy beta particles and a long half-life. Furthermore, the coexistence of highly concentrated nonradioactive ions in wastewater makes 137Cs separation extremely challenging. Unlike conventional adsorbents, metal sulfides have an inherently high affinity for Lewis soft acid Cs+ because of the presence of Lewis soft base –S in their framework. However, their adsorption performance is significantly reduced under acidic and alkaline conditions, and the reason has not been revealed yet. In this thesis, we addressed the design of novel metal sulfide adsorbents with high adsorption capacity and high selectivity toward Cs over a wide pH range and systematically investigated the adsorption mechanism through multiple characterizations.
First, potassium antimony thiostannate (KSbSnS-2) is synthesized by doping Sb3+ with lone pair electrons into the Sn-S matrix. Compared with Sn4+, Sb3+ has a relatively lower charge valence and a larger ionic radius, thereby expecting a more Lewis basic Sb3+-containing thiostannate framework that can improve the adsorption capacity for Cs+. Furthermore, the addition of Lewis basic Sb3+ with lone pair electrons could allow the metal sulfide structure to withstand a more basic environment and provide additional adsorption sites. As a result, KSbSnS-2 showed a high adsorption capacity (358 mg/g) and distribution coefficient (1.59 × 105 mL/g) toward Cs+. The adsorption performance was good over a wide active pH range (1–12), even in extreme alkaline conditions in particular (Kd = 3.26 × 104 mL/g at pH 12). However, the distribution coefficient decreased significantly under acidic conditions.
To address this issue, a novel potassium aluminum thiostannate (KAlSnS-3) adsorbent was designed with the hypothesis that the release of structural Al3+ would contribute to the Cs+ adsorption. Under highly acidic and alkaline conditions, the release of Al3+ due to the low stability of Al-S bonds compensates for a decrease in adsorption capability, a general tendency in harsh conditions. In addition, the lower valence of Al3+ than that of Sn4+ results in a negative charge, which is then balanced by extra K+ ions. The K+ ions intercalated between 2D layers act as the primary active species for Cs+ adsorption. As a result, KAlSnS-3 demonstrated excellent adsorption performance across a broad pH range (1–13) (Kd: 1.04 × 104 mL/g at pH 2, 2.97 × 104 mL/g at pH 12), and high selectivity for Cs+. However, due to the large size difference between Al3+ and Cs+, fewer Cs+ were adsorbed than H+ under acidic conditions.
To further improve the adsorption performance for Cs+ under acidic conditions, a novel SnS2-type potassium calcium thiostannate (KCaSnS) was developed by introducing Ca2+ with a large radius (1.00 Å) and low valence into the Sn-S matrix. The release of structural Ca2+ in addition to the interlayered K+ under acidic conditions could enhance the adsorption of Cs+ because of their similar ionic radius. As a result, KCaSnS showed high Cs+ adsorption capacity at acidic (qm: 235 mg/g) and neutral (qm: 273 mg/g) solutions. KCaSnS also exhibited high selectivity for Cs+ even in acidic artificial seawater (Kd = 2.95 × 103 mL/g).
Finally, the mechanism behind the excellent adsorption performance of KSbSnS-2, KAlSnS-3, and KCaSnS was discussed, respectively, on the basis of the concepts of electrostatic interactions and chemical affinity, supported by the evidence of crystallinity, elemental concentration, and binding energy of electrons.