Biological production of inorganic materials is impeded by relatively few organisms possessing genetic and metabolic linkage to material properties. The physiology of electroactive bacteria is intimately tied to inorganic transformations, which makes genetically tractable and well-studied electrogens, such as Shewanella oneidensis, attractive hosts for material synthesis. Notably, this species is capable of reducing a variety of transition-metal ions into functional nanoparticles, but exact mechanisms of nanoparticle biosynthesis remain ill-defined. We report two key factors of extracellular electron transfer by S. oneidensis, the outer membrane cytochrome, MtrC, and soluble redox shuttles (flavins), that affect Pd nanoparticle formation. C...
We thank Pat-Espadas et al.1 for their comments on ourpublication2 and especially for bringing to ou...
Aerobically grown E. coli cells reduced Pd(II) via a novel mechanism using formate as the electron d...
Extracellular electron transfer pathways allow bacteria to transfer electrons from the cell metaboli...
The relative scarcity of well-defined genetic and metabolic linkages to material properties impedes ...
Production of catalytic palladium (Pd) nanoparticles using dissimilatory metal-reducing bacteria suc...
Insights into extracellular electron transfer of microorganisms are important for the understanding ...
Biotechnology has been transformed by increased cellular control over molecular products and process...
Herein we have demonstrated a DET mechanism used by D. desulfuricans; where the periplasmic cytochro...
The metal-reducing bacterium Shewanella oneidensis is capable of reducing various metal(loid)s and p...
The interaction between Shewanella oneidensis MR-1 and the soluble metal Pd(II) during the reductive...
The palladium (Pd)-catalysed reaction has attracted much attention, making Pd the most valuable of t...
Palladium nanoparticles (Pd NPs) offer a wide range of novel and exciting applications in catalysis,...
ABSTRACT: Sustainable methods are needed to recycle precious metals and synthesize catalytic nanopar...
Numerous studies have focused on the bacterial synthesis of palladium nanoparticles (bio-Pd NPs), vi...
Numerous studies have focused on the bacterial synthesis of palladium nanoparticles (bio-Pd NPs), v...
We thank Pat-Espadas et al.1 for their comments on ourpublication2 and especially for bringing to ou...
Aerobically grown E. coli cells reduced Pd(II) via a novel mechanism using formate as the electron d...
Extracellular electron transfer pathways allow bacteria to transfer electrons from the cell metaboli...
The relative scarcity of well-defined genetic and metabolic linkages to material properties impedes ...
Production of catalytic palladium (Pd) nanoparticles using dissimilatory metal-reducing bacteria suc...
Insights into extracellular electron transfer of microorganisms are important for the understanding ...
Biotechnology has been transformed by increased cellular control over molecular products and process...
Herein we have demonstrated a DET mechanism used by D. desulfuricans; where the periplasmic cytochro...
The metal-reducing bacterium Shewanella oneidensis is capable of reducing various metal(loid)s and p...
The interaction between Shewanella oneidensis MR-1 and the soluble metal Pd(II) during the reductive...
The palladium (Pd)-catalysed reaction has attracted much attention, making Pd the most valuable of t...
Palladium nanoparticles (Pd NPs) offer a wide range of novel and exciting applications in catalysis,...
ABSTRACT: Sustainable methods are needed to recycle precious metals and synthesize catalytic nanopar...
Numerous studies have focused on the bacterial synthesis of palladium nanoparticles (bio-Pd NPs), vi...
Numerous studies have focused on the bacterial synthesis of palladium nanoparticles (bio-Pd NPs), v...
We thank Pat-Espadas et al.1 for their comments on ourpublication2 and especially for bringing to ou...
Aerobically grown E. coli cells reduced Pd(II) via a novel mechanism using formate as the electron d...
Extracellular electron transfer pathways allow bacteria to transfer electrons from the cell metaboli...