[
    {
        "id": "osp-13285",
        "type": "article-journal",
        "title": "Microwave-Assisted Adsorptive Desulfurization of Model Diesel Fuel Using Synthesized Microporous Rare Earth Metal-Doped Zeolite Y",
        "author": [
            {
                "family": "Salahudeen",
                "given": "Nurudeen"
            },
            {
                "family": "Ahmed",
                "given": "Abdulkarim S."
            },
            {
                "family": "Al-Muhtaseb",
                "given": "Ala'a Hamed"
            },
            {
                "family": "Jibril",
                "given": "Baba Yakubu"
            },
            {
                "family": "Al-Hajri",
                "given": "Rashid S."
            },
            {
                "family": "Waziri",
                "given": "Saidu M."
            },
            {
                "family": "Dauda",
                "given": "Mohammed"
            },
            {
                "family": "Al-Sabahi",
                "given": "Jamal Nasser"
            }
        ],
        "URL": "https://omanscience.com/en/articles/microwave-assisted-adsorptive-desulfurization-of-model-diesel-fuel-using-synthesized-microporous-rare-earth-metal-doped-zeolite-y",
        "language": "en",
        "issued": {
            "date-parts": [
                [
                    2015
                ]
            ]
        },
        "container-title": "The Journal of Engineering Research",
        "volume": "12",
        "issue": "1",
        "page": "44",
        "DOI": "10.24200/tjer.vol12iss1pp44-52",
        "publisher": "Sultan Qaboos University",
        "ISSN": "1726-6009",
        "abstract": "The microwave-assisted adsorptive desulfurization of model fuel (thiophene in n-heptane) was investigated using a synthesized rare earth metal-doped zeolite Y (RE Y). Crystallinity of the synthesized zeolite was 89.5%, the silicon/aluminium (Si/Al) molar ratio was 5.2, the Brunauer–Emmett–Teller (BET) surface area was 980.9 m2/g, and the pore volume and diameter was 0.3494 cm3/g and 1.425 nm, respectively. The results showed that the microwave reactor could be used to enhance the adsorptive desulfurization process with best efficiency of 75% at reaction conditions of 100 °C and 15 minutes. The high desulfurization effect was likely due to the higher efficiency impact of microwave energy in the interaction between sulfur in thiophene and HO-La(OSiAl)."
    }
]