The present study reports the groundwork for preparing a greener catalyst, Candida rugosa lipase (CRL), supported on biomass-based nanocellulose-silica-reinforced polyethersulfone membrane (NC-SiO2-PES) and proved its stability in synthesizing pentyl valerate. The NC-SiO2-PES/CRL-catalyzed synthesis of the ester exhibited a ping-pong bi-bi mechanism, with a high Vmax value and low Km value over the free CRL, confirming the former's greater substrate affinity. The kinetics data demonstrated that the NC-SiO2-PES/CRL was catalytically more efficient than its free counterpart. The lower Michaelis-Menten constant of NC-SiO2-PES/CRL for pentanol (Km,B = 43.53 mM) than valeric acid (Km,A = 82.03 mM) indicates that pentanol was favored over the lat...
BACKGROUNDBiocatalysts are a promising alternative for the production of natural flavor compounds. C...
Inorganic biopolymer-based nanocomposites are useful for stabilizing lipases for enhanced catalytic ...
Oil palm leaves (OPL) silica (SiO2) can replace the energy-intensive, commercially produced SiO2. Mo...
A greener processing route to replace the current environmentally-unfriendly esterification techniqu...
Herein, this study extracted nanocrystalline cellulose (NC) and silica (SiO2) from raw oil palm leav...
A novel greener MNC/PES membrane was developed through an electrospinning technique for lipase immob...
A novel greener MNC/PES membrane was developed through an electrospinning technique for lipase immob...
An alternative environmentally benign support was prepared from nanocrystalline silica (SiO2), and c...
A novel greener MNC/PES membrane was developed through an electrospinning technique for lipase immob...
Herein, silica (SiO2) extracted from treated oil palm leaves ash (TOPLA) was coated over Fe3O4 (SiO2...
Lipase (Candida antarctica lipase B) was immobilised on silica that was produced via a mild route us...
The contribution of chitosan/nanocellulose (CS-NC) to the enzymatic activity of Candida rugosa lipas...
Inorganic biopolymer-based nanocomposites are useful for stabilizing lipases for enhanced catalytic ...
Till date, studies that investigated the effect of glutaraldehyde concentration on catalytic efficac...
Till date, studies that investigated the effect of glutaraldehyde concentration on catalytic efficac...
BACKGROUNDBiocatalysts are a promising alternative for the production of natural flavor compounds. C...
Inorganic biopolymer-based nanocomposites are useful for stabilizing lipases for enhanced catalytic ...
Oil palm leaves (OPL) silica (SiO2) can replace the energy-intensive, commercially produced SiO2. Mo...
A greener processing route to replace the current environmentally-unfriendly esterification techniqu...
Herein, this study extracted nanocrystalline cellulose (NC) and silica (SiO2) from raw oil palm leav...
A novel greener MNC/PES membrane was developed through an electrospinning technique for lipase immob...
A novel greener MNC/PES membrane was developed through an electrospinning technique for lipase immob...
An alternative environmentally benign support was prepared from nanocrystalline silica (SiO2), and c...
A novel greener MNC/PES membrane was developed through an electrospinning technique for lipase immob...
Herein, silica (SiO2) extracted from treated oil palm leaves ash (TOPLA) was coated over Fe3O4 (SiO2...
Lipase (Candida antarctica lipase B) was immobilised on silica that was produced via a mild route us...
The contribution of chitosan/nanocellulose (CS-NC) to the enzymatic activity of Candida rugosa lipas...
Inorganic biopolymer-based nanocomposites are useful for stabilizing lipases for enhanced catalytic ...
Till date, studies that investigated the effect of glutaraldehyde concentration on catalytic efficac...
Till date, studies that investigated the effect of glutaraldehyde concentration on catalytic efficac...
BACKGROUNDBiocatalysts are a promising alternative for the production of natural flavor compounds. C...
Inorganic biopolymer-based nanocomposites are useful for stabilizing lipases for enhanced catalytic ...
Oil palm leaves (OPL) silica (SiO2) can replace the energy-intensive, commercially produced SiO2. Mo...