The effect of structure directing agents on micro/mesopore structures of aluminosilicates from Indonesian kaolin as deoxygenation catalysts

Indonesian kaolin was successfully transformed into aluminosilicates (ALS) via two-step hydrothermal synthesis using different structure directing agents (SDA). The effects of structure, porosity and catalytic activity of ALS were determined for deoxygenation of bio-oil into green diesel. The first...

Full description

Bibliographic Details
Main Authors: Reva Edra Nugraha, Didik Prasetyoko, Nurul Asikin-Mijan, Hasliza Bahruji, Suprapto Suprapto, Yap, Taufiq Yun Hin, Aishah Abdul Jalil
Format: Article
Language:English
English
Published: Elsevier 2021
Subjects:
Online Access:https://eprints.ums.edu.my/id/eprint/31159/2/The%20effect%20of%20structure%20directing%20agents%20on%20micro_mesopore%20structures%20of%20aluminosilicates%20from%20Indonesian%20kaolin%20as%20deoxygenation%20catalysts.pdf
https://eprints.ums.edu.my/id/eprint/31159/3/The%20effect%20of%20structure%20directing%20agents%20on%20micro_mesopore%20structures%20of%20aluminosilicates%20from%20Indonesian%20kaolin%20as%20deoxygenation%20catalysts_ABSTRACT.pdf
Description
Summary:Indonesian kaolin was successfully transformed into aluminosilicates (ALS) via two-step hydrothermal synthesis using different structure directing agents (SDA). The effects of structure, porosity and catalytic activity of ALS were determined for deoxygenation of bio-oil into green diesel. The first hydrothermal step used silicalite and tetrapropyl ammonium hydroxide (TPAOH) as SDA, followed by the addition of cetyltrimethyl ammonium bromide (CTAB) in the second hydrothermal step to induce mesopores. Silicalite formed ZSM-5 with hierarchical structures meanwhile TPAOH produced ZSM-5 mainly with microporosity. ZSM-5 framework was rapidly formed when using TPAOH preventing the formation of mesostructure in the second crystallization processes. In the absence of SDA, the aluminosilicate was characterized as mesoporous Al-MCM-41. At similar Si/Al ratios, AlMCM-41 exhibited high surface area, mesopore volume and surface acidities than ZSM-5, consequently enhancing the conversion and selectivity of deoxygenation reaction towards long-chain (C11-C18) green diesel hydrocarbon.