Summary Bimetallic nanoparticle catalysts have attracted considerable attention due to their unique chemical and physical properties. The ability of metal‐reducing bacteria to produce highly catalytically active monometallic nanoparticles is well known; however, the properties and catalytic activity of bimetallic nanoparticles synthesized with these organisms is not well understood. Here, we report the one‐pot biosynthesis of Pd/Ag (bio‐Pd/Ag) and Pd/Au (bio‐Pd/Au) nanoparticles using the metal‐reducing bacterium, Shewanella oneidensis, under mild conditions. Energy dispersive X‐ray analyses performed using scanning transmission electron microscopy (STEM) revealed the presence of both metals (Pd/Ag or Pd/Au) in the biosynthesized nanopartic...
In this work and for the first time, bimetallic Ag-Pd nanoparticles equipped with a core-shell struc...
Five gram negative and two gram positive bacterial strains known for their heavy metal tolerance or ...
Pd−Au core‐shell nanoparticles with a palladium core (diameter about 5.5 nm) and a gold shell (thick...
Bimetallic nanoparticle catalysts have attracted considerable attention due to their unique chemical...
The palladium (Pd)-catalysed reaction has attracted much attention, making Pd the most valuable of t...
We report a novel biochem. method based on the sacrificial hydrogen strategy to synthesize bimetalli...
AbstractFive gram negative and two gram positive bacterial strains known for their heavy metal toler...
Au[sbnd]Pd bimetallic nanospheres were synthesized via a green approach based on an in situ seed-med...
Au-Pd bimetallic nanospheres were synthesized via a green approach based on an in situ seed -mediate...
We report a novel biochemical method based on the sacrificial hydrogen strategy to synthesize bimeta...
Increasing demand of noble-metal nanoparticles (MNPs) in catalysis research urges the development of...
While precious metals are available to a very limited extent, there is an increasing demand to use t...
Biologically produced monometallic palladium nanoparticles (bio-Pd) have been shown to catalyze the ...
AuePd bimetallic nanospheres were synthesized via a green approach based on an in situ seed-mediated...
In this work and for the first time, bimetallic Ag-Pd nanoparticles equipped with a core-shell struc...
Five gram negative and two gram positive bacterial strains known for their heavy metal tolerance or ...
Pd−Au core‐shell nanoparticles with a palladium core (diameter about 5.5 nm) and a gold shell (thick...
Bimetallic nanoparticle catalysts have attracted considerable attention due to their unique chemical...
The palladium (Pd)-catalysed reaction has attracted much attention, making Pd the most valuable of t...
We report a novel biochem. method based on the sacrificial hydrogen strategy to synthesize bimetalli...
AbstractFive gram negative and two gram positive bacterial strains known for their heavy metal toler...
Au[sbnd]Pd bimetallic nanospheres were synthesized via a green approach based on an in situ seed-med...
Au-Pd bimetallic nanospheres were synthesized via a green approach based on an in situ seed -mediate...
We report a novel biochemical method based on the sacrificial hydrogen strategy to synthesize bimeta...
Increasing demand of noble-metal nanoparticles (MNPs) in catalysis research urges the development of...
While precious metals are available to a very limited extent, there is an increasing demand to use t...
Biologically produced monometallic palladium nanoparticles (bio-Pd) have been shown to catalyze the ...
AuePd bimetallic nanospheres were synthesized via a green approach based on an in situ seed-mediated...
In this work and for the first time, bimetallic Ag-Pd nanoparticles equipped with a core-shell struc...
Five gram negative and two gram positive bacterial strains known for their heavy metal tolerance or ...
Pd−Au core‐shell nanoparticles with a palladium core (diameter about 5.5 nm) and a gold shell (thick...