Pt−Ga-катализаторы на основе высокопористого оксида кремния MCM-41 для дегидрирования пропана

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Аннотация

Синтезирован высокопористый носитель на основе SiO2 со структурой МСМ-41. Методом пропитки получены Pt- и Pt−Ga-катализаторы дегидрирования пропана. Структура приготовленных образцов исследована методами низкотемпературной адсорбции азота, рентгенофазового анализа (РФА), особенности восстановления катализаторов – методом температурно-программированного восстановления в водороде (ТПВ-Н2). Каталитические свойства протестированы в реакции дегидрирования пропана, изучено влияние добавки водорода в состав реакционной смеси на активность катализаторов. Разработанный подход продемонстрировал возможность получения материалов на основе MCM-41, характеризующихся упорядоченной мезопористой структурой (мезопоры размером 3–4 нм) и высокой удельной поверхностью, что делает их перспективными для их применения в качестве носителей для катализаторов. Показано, что введение водорода в состав реакционной смеси приводит к увеличению стабильности и активности платиновых катализаторов.

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А. В. Зубков

ФГАОУ ВО Томский государственный университет

Автор, ответственный за переписку.
Email: zubkov.chem@gmail.com
Россия, просп. Ленина, 36, Томск, 634050

Т. А. Бугрова

ФГАОУ ВО Томский государственный университет

Email: zubkov.chem@gmail.com
Россия, просп. Ленина, 36, Томск, 634050

Е. В. Евдокимова

ФГАОУ ВО Томский государственный университет

Email: zubkov.chem@gmail.com
Россия, просп. Ленина, 36, Томск, 634050

Г. В. Мамонтов

ФГАОУ ВО Томский государственный университет

Email: zubkov.chem@gmail.com
Россия, просп. Ленина, 36, Томск, 634050

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1. JATS XML
2. Рис. 1. Изотермы адсорбции–десорбции азота (а) и соответствующие распределения пор по размерам (б) для MCM-41 и катализаторов на его основе.

3. Рис. 2. Рентгенограммы полученных катализаторов (а) и область рентгенограммы, содержащая рефлекс для грани Pt(111) (б).

4. Рис. 3. Профили ТПВ-H2 катализаторов, полученных на основе MCM-41.

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5. Рис. 4. Зависимости конверсии пропана (X(C3H8)) и выхода пропилена (Y(C3H6)) (а) и селективности образования продуктов (S) (б−г) для катализаторов на основе MCM-41 от времени реакции дегидрирования пропана при 550 и 600°C в течение трех последовательных циклов реакция−регенерация−активация.


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