The Experts below are selected from a list of 6036 Experts worldwide ranked by ideXlab platform
Ulrich Wiesner - One of the best experts on this subject based on the ideXlab platform.
-
one pot synthesis of platinum based nanoparticles incorporated into mesoporous Niobium Oxide carbon composites for fuel cell electrodes
Journal of the American Chemical Society, 2009Co-Authors: Christopher M Orilall, Futoshi Matsumoto, Qin Zhou, Hector D Abruna, Francis J Disalvo, Ulrich WiesnerAbstract:Catalyst-electrode design is crucial for the commercialization and widespread use of polymer electrolyte membrane fuel cells. There are considerable challenges in making less expensive, more durable, and more active catalysts. Herein, we report the one-pot synthesis of Pt and Pt−Pb nanoparticles incorporated into the pores of mesoporous Niobium Oxide−carbon composites. The self-assembly of block copolymers with Niobium Oxide and metal precursors results in an ordered mesostructured hybrid. Appropriate heat treatment of this hybrid produces highly crystalline, well-ordered mesoporous Niobium Oxide−carbon composites with Pt (or Pt−Pb) nanoparticles incorporated into the mesopores. The in situ-generated graphitic-like carbon material prevents the collapse of the mesostructure, while the metal Oxide crystallizes at high temperatures and enhances the electrical conductivity of the final material. Formic acid electrooxidation with this novel material shows 4 times higher mass activities (3.3 mA/μg) and somewhat...
-
one pot synthesis of platinum based nanoparticles incorporated into mesoporous Niobium Oxide carbon composites for fuel cell electrodes
Journal of the American Chemical Society, 2009Co-Authors: Christopher M Orilall, Futoshi Matsumoto, Qin Zhou, Hector D Abruna, Francis J Disalvo, Hiroaki Sai, Ulrich WiesnerAbstract:Catalyst-electrode design is crucial for the commercialization and widespread use of polymer electrolyte membrane fuel cells. There are considerable challenges in making less expensive, more durable, and more active catalysts. Herein, we report the one-pot synthesis of Pt and Pt-Pb nanoparticles incorporated into the pores of mesoporous Niobium Oxide-carbon composites. The self-assembly of block copolymers with Niobium Oxide and metal precursors results in an ordered mesostructured hybrid. Appropriate heat treatment of this hybrid produces highly crystalline, well-ordered mesoporous Niobium Oxide-carbon composites with Pt (or Pt-Pb) nanoparticles incorporated into the mesopores. The in situ-generated graphitic-like carbon material prevents the collapse of the mesostructure, while the metal Oxide crystallizes at high temperatures and enhances the electrical conductivity of the final material. Formic acid electrooxidation with this novel material shows 4 times higher mass activities (3.3 mA/microg) and somewhat lower onset potentials (-0.24 V vs Ag/AgCl) than the best previously reported values employing Pt-Pb intermetallic nanoparticles supported on conducting carbon (0.85 mA/microg and -0.18 V, respectively).
Christopher M Orilall - One of the best experts on this subject based on the ideXlab platform.
-
one pot synthesis of platinum based nanoparticles incorporated into mesoporous Niobium Oxide carbon composites for fuel cell electrodes
Journal of the American Chemical Society, 2009Co-Authors: Christopher M Orilall, Futoshi Matsumoto, Qin Zhou, Hector D Abruna, Francis J Disalvo, Ulrich WiesnerAbstract:Catalyst-electrode design is crucial for the commercialization and widespread use of polymer electrolyte membrane fuel cells. There are considerable challenges in making less expensive, more durable, and more active catalysts. Herein, we report the one-pot synthesis of Pt and Pt−Pb nanoparticles incorporated into the pores of mesoporous Niobium Oxide−carbon composites. The self-assembly of block copolymers with Niobium Oxide and metal precursors results in an ordered mesostructured hybrid. Appropriate heat treatment of this hybrid produces highly crystalline, well-ordered mesoporous Niobium Oxide−carbon composites with Pt (or Pt−Pb) nanoparticles incorporated into the mesopores. The in situ-generated graphitic-like carbon material prevents the collapse of the mesostructure, while the metal Oxide crystallizes at high temperatures and enhances the electrical conductivity of the final material. Formic acid electrooxidation with this novel material shows 4 times higher mass activities (3.3 mA/μg) and somewhat...
-
one pot synthesis of platinum based nanoparticles incorporated into mesoporous Niobium Oxide carbon composites for fuel cell electrodes
Journal of the American Chemical Society, 2009Co-Authors: Christopher M Orilall, Futoshi Matsumoto, Qin Zhou, Hector D Abruna, Francis J Disalvo, Hiroaki Sai, Ulrich WiesnerAbstract:Catalyst-electrode design is crucial for the commercialization and widespread use of polymer electrolyte membrane fuel cells. There are considerable challenges in making less expensive, more durable, and more active catalysts. Herein, we report the one-pot synthesis of Pt and Pt-Pb nanoparticles incorporated into the pores of mesoporous Niobium Oxide-carbon composites. The self-assembly of block copolymers with Niobium Oxide and metal precursors results in an ordered mesostructured hybrid. Appropriate heat treatment of this hybrid produces highly crystalline, well-ordered mesoporous Niobium Oxide-carbon composites with Pt (or Pt-Pb) nanoparticles incorporated into the mesopores. The in situ-generated graphitic-like carbon material prevents the collapse of the mesostructure, while the metal Oxide crystallizes at high temperatures and enhances the electrical conductivity of the final material. Formic acid electrooxidation with this novel material shows 4 times higher mass activities (3.3 mA/microg) and somewhat lower onset potentials (-0.24 V vs Ag/AgCl) than the best previously reported values employing Pt-Pb intermetallic nanoparticles supported on conducting carbon (0.85 mA/microg and -0.18 V, respectively).
Futoshi Matsumoto - One of the best experts on this subject based on the ideXlab platform.
-
one pot synthesis of platinum based nanoparticles incorporated into mesoporous Niobium Oxide carbon composites for fuel cell electrodes
Journal of the American Chemical Society, 2009Co-Authors: Christopher M Orilall, Futoshi Matsumoto, Qin Zhou, Hector D Abruna, Francis J Disalvo, Ulrich WiesnerAbstract:Catalyst-electrode design is crucial for the commercialization and widespread use of polymer electrolyte membrane fuel cells. There are considerable challenges in making less expensive, more durable, and more active catalysts. Herein, we report the one-pot synthesis of Pt and Pt−Pb nanoparticles incorporated into the pores of mesoporous Niobium Oxide−carbon composites. The self-assembly of block copolymers with Niobium Oxide and metal precursors results in an ordered mesostructured hybrid. Appropriate heat treatment of this hybrid produces highly crystalline, well-ordered mesoporous Niobium Oxide−carbon composites with Pt (or Pt−Pb) nanoparticles incorporated into the mesopores. The in situ-generated graphitic-like carbon material prevents the collapse of the mesostructure, while the metal Oxide crystallizes at high temperatures and enhances the electrical conductivity of the final material. Formic acid electrooxidation with this novel material shows 4 times higher mass activities (3.3 mA/μg) and somewhat...
-
one pot synthesis of platinum based nanoparticles incorporated into mesoporous Niobium Oxide carbon composites for fuel cell electrodes
Journal of the American Chemical Society, 2009Co-Authors: Christopher M Orilall, Futoshi Matsumoto, Qin Zhou, Hector D Abruna, Francis J Disalvo, Hiroaki Sai, Ulrich WiesnerAbstract:Catalyst-electrode design is crucial for the commercialization and widespread use of polymer electrolyte membrane fuel cells. There are considerable challenges in making less expensive, more durable, and more active catalysts. Herein, we report the one-pot synthesis of Pt and Pt-Pb nanoparticles incorporated into the pores of mesoporous Niobium Oxide-carbon composites. The self-assembly of block copolymers with Niobium Oxide and metal precursors results in an ordered mesostructured hybrid. Appropriate heat treatment of this hybrid produces highly crystalline, well-ordered mesoporous Niobium Oxide-carbon composites with Pt (or Pt-Pb) nanoparticles incorporated into the mesopores. The in situ-generated graphitic-like carbon material prevents the collapse of the mesostructure, while the metal Oxide crystallizes at high temperatures and enhances the electrical conductivity of the final material. Formic acid electrooxidation with this novel material shows 4 times higher mass activities (3.3 mA/microg) and somewhat lower onset potentials (-0.24 V vs Ag/AgCl) than the best previously reported values employing Pt-Pb intermetallic nanoparticles supported on conducting carbon (0.85 mA/microg and -0.18 V, respectively).
Qin Zhou - One of the best experts on this subject based on the ideXlab platform.
-
one pot synthesis of platinum based nanoparticles incorporated into mesoporous Niobium Oxide carbon composites for fuel cell electrodes
Journal of the American Chemical Society, 2009Co-Authors: Christopher M Orilall, Futoshi Matsumoto, Qin Zhou, Hector D Abruna, Francis J Disalvo, Ulrich WiesnerAbstract:Catalyst-electrode design is crucial for the commercialization and widespread use of polymer electrolyte membrane fuel cells. There are considerable challenges in making less expensive, more durable, and more active catalysts. Herein, we report the one-pot synthesis of Pt and Pt−Pb nanoparticles incorporated into the pores of mesoporous Niobium Oxide−carbon composites. The self-assembly of block copolymers with Niobium Oxide and metal precursors results in an ordered mesostructured hybrid. Appropriate heat treatment of this hybrid produces highly crystalline, well-ordered mesoporous Niobium Oxide−carbon composites with Pt (or Pt−Pb) nanoparticles incorporated into the mesopores. The in situ-generated graphitic-like carbon material prevents the collapse of the mesostructure, while the metal Oxide crystallizes at high temperatures and enhances the electrical conductivity of the final material. Formic acid electrooxidation with this novel material shows 4 times higher mass activities (3.3 mA/μg) and somewhat...
-
one pot synthesis of platinum based nanoparticles incorporated into mesoporous Niobium Oxide carbon composites for fuel cell electrodes
Journal of the American Chemical Society, 2009Co-Authors: Christopher M Orilall, Futoshi Matsumoto, Qin Zhou, Hector D Abruna, Francis J Disalvo, Hiroaki Sai, Ulrich WiesnerAbstract:Catalyst-electrode design is crucial for the commercialization and widespread use of polymer electrolyte membrane fuel cells. There are considerable challenges in making less expensive, more durable, and more active catalysts. Herein, we report the one-pot synthesis of Pt and Pt-Pb nanoparticles incorporated into the pores of mesoporous Niobium Oxide-carbon composites. The self-assembly of block copolymers with Niobium Oxide and metal precursors results in an ordered mesostructured hybrid. Appropriate heat treatment of this hybrid produces highly crystalline, well-ordered mesoporous Niobium Oxide-carbon composites with Pt (or Pt-Pb) nanoparticles incorporated into the mesopores. The in situ-generated graphitic-like carbon material prevents the collapse of the mesostructure, while the metal Oxide crystallizes at high temperatures and enhances the electrical conductivity of the final material. Formic acid electrooxidation with this novel material shows 4 times higher mass activities (3.3 mA/microg) and somewhat lower onset potentials (-0.24 V vs Ag/AgCl) than the best previously reported values employing Pt-Pb intermetallic nanoparticles supported on conducting carbon (0.85 mA/microg and -0.18 V, respectively).
Hector D Abruna - One of the best experts on this subject based on the ideXlab platform.
-
one pot synthesis of platinum based nanoparticles incorporated into mesoporous Niobium Oxide carbon composites for fuel cell electrodes
Journal of the American Chemical Society, 2009Co-Authors: Christopher M Orilall, Futoshi Matsumoto, Qin Zhou, Hector D Abruna, Francis J Disalvo, Ulrich WiesnerAbstract:Catalyst-electrode design is crucial for the commercialization and widespread use of polymer electrolyte membrane fuel cells. There are considerable challenges in making less expensive, more durable, and more active catalysts. Herein, we report the one-pot synthesis of Pt and Pt−Pb nanoparticles incorporated into the pores of mesoporous Niobium Oxide−carbon composites. The self-assembly of block copolymers with Niobium Oxide and metal precursors results in an ordered mesostructured hybrid. Appropriate heat treatment of this hybrid produces highly crystalline, well-ordered mesoporous Niobium Oxide−carbon composites with Pt (or Pt−Pb) nanoparticles incorporated into the mesopores. The in situ-generated graphitic-like carbon material prevents the collapse of the mesostructure, while the metal Oxide crystallizes at high temperatures and enhances the electrical conductivity of the final material. Formic acid electrooxidation with this novel material shows 4 times higher mass activities (3.3 mA/μg) and somewhat...
-
one pot synthesis of platinum based nanoparticles incorporated into mesoporous Niobium Oxide carbon composites for fuel cell electrodes
Journal of the American Chemical Society, 2009Co-Authors: Christopher M Orilall, Futoshi Matsumoto, Qin Zhou, Hector D Abruna, Francis J Disalvo, Hiroaki Sai, Ulrich WiesnerAbstract:Catalyst-electrode design is crucial for the commercialization and widespread use of polymer electrolyte membrane fuel cells. There are considerable challenges in making less expensive, more durable, and more active catalysts. Herein, we report the one-pot synthesis of Pt and Pt-Pb nanoparticles incorporated into the pores of mesoporous Niobium Oxide-carbon composites. The self-assembly of block copolymers with Niobium Oxide and metal precursors results in an ordered mesostructured hybrid. Appropriate heat treatment of this hybrid produces highly crystalline, well-ordered mesoporous Niobium Oxide-carbon composites with Pt (or Pt-Pb) nanoparticles incorporated into the mesopores. The in situ-generated graphitic-like carbon material prevents the collapse of the mesostructure, while the metal Oxide crystallizes at high temperatures and enhances the electrical conductivity of the final material. Formic acid electrooxidation with this novel material shows 4 times higher mass activities (3.3 mA/microg) and somewhat lower onset potentials (-0.24 V vs Ag/AgCl) than the best previously reported values employing Pt-Pb intermetallic nanoparticles supported on conducting carbon (0.85 mA/microg and -0.18 V, respectively).