Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Continuous Photocatalytic Acetylene Conversion to Ethylene in Liquid Under Ambient Conditions

View through CrossRef
Abstract Ethylene is a basic building block for polymer synthesis, but its purification from petroleum‐based processes (e.g., thermo‐catalytic acetylene hydrogenation) and its production from coal‐based processes (e.g., Fischer–Tropsch synthesis) normally require high temperature, high pressure, and gaseous hydrogen. Here, we report a continuous ethylene photosynthesis approach as a new platform technology that enables highly efficient and selective conversion of acetylene to ethylene in liquid under mild conditions. This platform technology is compatible with a wide range of solvents, catalysts, and hydrogen sources. Using Pd/mpg‐C 3 N 4 as the model photocatalyst, a complete conversion of acetylene was achieved with high ethylene selectivity (>93%) under the continuous flow of either a pure acetylene stream or a crude ethylene stream containing acetylene impurity. The process performance remained stable for at least 72 h. Physical, theoretical, and in situ spectroscopy investigations showed that the photocatalytic acetylene hydrogenation follows the proton‐coupled electron transfer (PCET) and atomic hydrogen‐mediated indirect electron transfer pathways with proton as the hydrogen source. The technoeconomic analysis (TEA) demonstrated that this photocatalytic approach has large profitable margins for both ethylene purification and ethylene production processes. This study provides a green and sustainable technology for both petrochemical (ethylene purification) and coal‐chemical (ethylene production) industries.
Title: Continuous Photocatalytic Acetylene Conversion to Ethylene in Liquid Under Ambient Conditions
Description:
Abstract Ethylene is a basic building block for polymer synthesis, but its purification from petroleum‐based processes (e.
g.
, thermo‐catalytic acetylene hydrogenation) and its production from coal‐based processes (e.
g.
, Fischer–Tropsch synthesis) normally require high temperature, high pressure, and gaseous hydrogen.
Here, we report a continuous ethylene photosynthesis approach as a new platform technology that enables highly efficient and selective conversion of acetylene to ethylene in liquid under mild conditions.
This platform technology is compatible with a wide range of solvents, catalysts, and hydrogen sources.
Using Pd/mpg‐C 3 N 4 as the model photocatalyst, a complete conversion of acetylene was achieved with high ethylene selectivity (>93%) under the continuous flow of either a pure acetylene stream or a crude ethylene stream containing acetylene impurity.
The process performance remained stable for at least 72 h.
Physical, theoretical, and in situ spectroscopy investigations showed that the photocatalytic acetylene hydrogenation follows the proton‐coupled electron transfer (PCET) and atomic hydrogen‐mediated indirect electron transfer pathways with proton as the hydrogen source.
The technoeconomic analysis (TEA) demonstrated that this photocatalytic approach has large profitable margins for both ethylene purification and ethylene production processes.
This study provides a green and sustainable technology for both petrochemical (ethylene purification) and coal‐chemical (ethylene production) industries.

Related Results

Controlling Ethylene Responses in Horticultural Crops at the Receptor Level
Controlling Ethylene Responses in Horticultural Crops at the Receptor Level
Ethylene is a plant hormone that controls many plant responses, such as growth, senescence, ripening, abscission and seed germination. Recently, 1-methy- cyclopropene (1-MCP), was ...
SAFETY CONTROL SYSTEMS FOR ETHYLENE PRODUCTION
SAFETY CONTROL SYSTEMS FOR ETHYLENE PRODUCTION
Ethylene production is a cornerstone of the petrochemical industry, with a global demand that continues to rise. Ensuring efficient, safe, and environmentally responsible ethylene ...
Montmorillonite-reinforced nanocomposite from off-grade plastics materials using response surface analysis
Montmorillonite-reinforced nanocomposite from off-grade plastics materials using response surface analysis
Off-grade thermoplastic poly(ethylene terephthalate) of industrial manufacturers was partially depolymerized to synthesize poly(ethylene terephthalate) oligomers. Influences of rea...
Uncovering the Potential of Ethylene Inhibitors on Delaying Ethylene Mediated Senescence and Preserving Cut Life of Climacteric Flowers
Uncovering the Potential of Ethylene Inhibitors on Delaying Ethylene Mediated Senescence and Preserving Cut Life of Climacteric Flowers
Maintaining the vase life and quality of cut flowers is one of the main obstacle in floriculture industry. Cut flowers, especially climacteric ones have very short life span attrib...
Assessment of a semi-quantitative screening method for diagnosis of ethylene glycol poisoning
Assessment of a semi-quantitative screening method for diagnosis of ethylene glycol poisoning
Background Ethylene glycol poisoning remains a rare but important presentation to acute toxicology units. Guidelines recommended that ethylene glycol should be ...
Ripening manipulation of ‘Hass’ avocado with ethylene
Ripening manipulation of ‘Hass’ avocado with ethylene
The long ripening period of ‘Hass’ avocado fruits harvested at the beginning of the harvest can be detrimental to sales. Ethylene is capable of anticipating and accelerating the ri...
Molecular Cobalt Catalysts for Highly Selective Electrocatalytic Acetylene Semi-Hydrogenation
Molecular Cobalt Catalysts for Highly Selective Electrocatalytic Acetylene Semi-Hydrogenation
Abstract Electrocatalytic acetylene semi-hydrogenation (EASH) offers a facile pathway for ethylene production. However, competing side reactions, particularly hydrogen evol...
Ethylene Signaling in Plants: Possible Crosstalk and Role in Stress Tolerance
Ethylene Signaling in Plants: Possible Crosstalk and Role in Stress Tolerance
Ethylene, a gaseous phytohormone, serves as a key regulator in governing diverse physiological mechanisms in plants, involving maturation, growth, and responding to environmental c...

Back to Top