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รศ.ดร.พัชรินทร์ วรธนกุล

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27 public publications

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New Suz-4 Zeolite Membrane From Sol-Gel Technique

Patcharin Worathanakul, Paisan Kongkachuichay

2008

A new SUZ-4 zeolite membrane with tetraethlyammonium hydroxide as the template was fabricated on mullite tube via hydrothermal sol-gel synthesis in a rotating autoclave reactor. The suitable synthesis condition was SiO2:Al2O3 ratio of 21.2 for 4 days at 155 °C crystallization under autogenous pressure. The obtained SUZ-4 possessed a high BET surface area of 396.4 m2/g, total pore volume at 2.611 cm3/g, and narrow pore size distribution with 97 nm mean diameter and 760 nm long of needle crystal shape. The SUZ-4 layer obtained from seeding crystallization was thicker than that of without seeds or in situ crystallization.

Evaluation of Nanostructured Sorbents in Differential Bed Reactors for Elemental Mercury Capture

Patcharin Worathanakul, Paisan Kongkachuichay, James D. Noel, Achariya Suriyawong, Daniel E. Giammar, Pratim Biswas

Environmental Engineering Science · 2008

Elemental mercury (Hg0 ) capture by heterogeneous gas–solid reaction with nanostructured sorbents was studied in a differential bed reactor system at room temperature. Commercially available (four types of iron oxide, titanium dioxide, titania pillared clay) and in-house synthesized (magnetite and SUZ-4 zeolite) sorbents were studied. Elemental mercury capture efficiency greater than 70% was observed for TiO2, TiO2 pillared clay (PILC), SUZ-4 zeolite, and one of the commercial iron oxides on irradiation with UV light for an inlet mercury concentration of 75 ± 1.9 μg/m3. The initial rate of Hg0 capture per unit mass of sorbent was highest for TiO2. The initial capture rates, rinit = kS0 (1-x)CαHg,0, were determined with α values of 1.03, 1.21, 1.19, and 1.51 for TiO2, TiO2 PILC, SUZ-4 zeolite, and one of the commercial iron oxides, respectively. In addition, the rate constants (k) were found to be 2.43×10−17, 4.66×10−19, 3.41×10−20 and 8.6×10−20μg1-α m3α-2 s−1 for TiO2, TiO2 PILC, SUZ-4 zeolite, and one of the commercial iron oxides, respectively. A three-step sequential extraction technique, targeting surface bound, acid-soluble, and encapsulated mercury species, was used to investigate the binding mechanisms and the mobility of mercury. The mercury associated with one of the commercial iron oxides was more labile than the mercury associated with the other sorbents. Titania (TiO2) shows the greatest potential to be used as a sorbent to capture elemental mercury on irradiation with UV light based on the results of this study.

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