In single-site olefin polymerization catalysis, a large excess of cocatalyst is often required for the generation of highly active catalysts, but the reason for this is unclear. In this work, fundamental insight into the multifaceted role of cocatalyst methylaluminoxane (MAO) in the activation, deactivation, and stabilization of group 4 metallocenes in the immobilized single-site olefin polymerization catalyst was gained. Employing probe molecule FT-IR spectroscopy, it was found that weak Lewis acid sites, inherent to the silica-supported MAO cocatalyst, are the main responsible species for the genesis of active metallocenes for olefin polymerization. These weak Lewis acid sites are the origin of AlMe2 + groups. Deactivation of metallocenes...
The research field of homogeneous Ziegler-Natta catalysts based on metallocene and methylaluminoxane...
Since its discovery, methylalumoxane (MAO) has become of great importance as a cocatalyst in homogen...
The true structure of methylalumoxane (MAO), the key component for the success of homogeous metalloc...
In single-site olefin polymerization catalysis, a large excess of cocatalyst is often required for t...
In single-site olefin polymerization catalysis, a large excess of cocatalyst is often required for t...
Metallocene-based olefin polymerization catalysts often require large excesses of co-catalyst for op...
Metallocene-based olefin polymerization catalysts often require large excesses of co-catalyst for op...
Metallocene-based olefin polymerization catalysts often require large excesses of co-catalyst for op...
We describe and compare the proposed mechanisms of ethene polymerization by the metallocene/methylal...
Single-site homogeneous catalysts need to be activated by a co-catalyst or counterion. The high act...
The true structure of methylalumoxane (MAO), the key component for the success of homogeous metalloc...
The true structure of methylalumoxane (MAO), the key component for the success of homogeous metalloc...
The true structure of methylalumoxane (MAO), the key component for the success of homogeous metalloc...
Transition metal–zeolite composites are versatile catalytic materials for a wide range of industrial...
The research field of homogeneous Ziegler-Natta catalysts based on metallocene and methylaluminoxane...
The research field of homogeneous Ziegler-Natta catalysts based on metallocene and methylaluminoxane...
Since its discovery, methylalumoxane (MAO) has become of great importance as a cocatalyst in homogen...
The true structure of methylalumoxane (MAO), the key component for the success of homogeous metalloc...
In single-site olefin polymerization catalysis, a large excess of cocatalyst is often required for t...
In single-site olefin polymerization catalysis, a large excess of cocatalyst is often required for t...
Metallocene-based olefin polymerization catalysts often require large excesses of co-catalyst for op...
Metallocene-based olefin polymerization catalysts often require large excesses of co-catalyst for op...
Metallocene-based olefin polymerization catalysts often require large excesses of co-catalyst for op...
We describe and compare the proposed mechanisms of ethene polymerization by the metallocene/methylal...
Single-site homogeneous catalysts need to be activated by a co-catalyst or counterion. The high act...
The true structure of methylalumoxane (MAO), the key component for the success of homogeous metalloc...
The true structure of methylalumoxane (MAO), the key component for the success of homogeous metalloc...
The true structure of methylalumoxane (MAO), the key component for the success of homogeous metalloc...
Transition metal–zeolite composites are versatile catalytic materials for a wide range of industrial...
The research field of homogeneous Ziegler-Natta catalysts based on metallocene and methylaluminoxane...
The research field of homogeneous Ziegler-Natta catalysts based on metallocene and methylaluminoxane...
Since its discovery, methylalumoxane (MAO) has become of great importance as a cocatalyst in homogen...
The true structure of methylalumoxane (MAO), the key component for the success of homogeous metalloc...