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Title: Structurally Defined 3D Nanographene Assemblies via Bottom-Up Chemical Synthesis for Highly Efficient Lithium Storage

Journal Article · · Advanced Materials
ORCiD logo [1];  [1];  [1];  [2];  [3];  [4];  [4];  [4];  [5];  [5];  [6];  [6];  [6];  [7];  [6];  [1]
  1. Los Alamos National Lab. (LANL), Los Alamos, NM (United States). Physical Chemistry and Applied Spectroscopy (C-PCS) Group
  2. Los Alamos National Lab. (LANL), Los Alamos, NM (United States). Sigma Division
  3. Univ. of Idaho, Moscow, ID (United States). Chemical and Materials Engineering
  4. Los Alamos National Lab. (LANL), Los Alamos, NM (United States). Materials Physics and Applications Division. Center of Integrated Nanotechnology (CINT)
  5. Los Alamos National Lab. (LANL), Los Alamos, NM (United States). Bioscience Division
  6. Univ. at Buffalo, NY (United States). Dept. of Chemical and Biological Engineering
  7. Case Western Reserve Univ., Cleveland, OH (United States). Center of Advanced Science and Engineering for Carbon (Case 4-Carbon). Dept. of Macromolecular Science and Engineering

Research Organization:
Los Alamos National Lab. (LANL), Los Alamos, NM (United States)
Sponsoring Organization:
USDOE Laboratory Directed Research and Development (LDRD) Program
Contributing Organization:
Case Western Reserve Univ., Cleveland, OH (United States); Univ. of Idaho, Moscow, ID (United States)
Grant/Contract Number:
AC52-06NA25396
OSTI ID:
1335597
Alternate ID(s):
OSTI ID: 1400799; OSTI ID: 1485403
Report Number(s):
LA-UR-15-25052; LA-UR-17-27754
Journal Information:
Advanced Materials, Vol. 28, Issue 46; ISSN 0935-9648
Publisher:
WileyCopyright Statement
Country of Publication:
United States
Language:
English
Citation Metrics:
Cited by: 53 works
Citation information provided by
Web of Science

References (42)

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Mn3O4−Graphene Hybrid as a High-Capacity Anode Material for Lithium Ion Batteries journal October 2010
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Carbon−Silicon Core−Shell Nanowires as High Capacity Electrode for Lithium Ion Batteries journal September 2009
In Situ Fabrication of Porous Graphene Electrodes for High-Performance Energy Storage journal February 2013
Large-area ultrathin films of reduced graphene oxide as a transparent and flexible electronic material journal April 2008
Defect-induced plating of lithium metal within porous graphene networks journal April 2014
Li Storage Properties of Disordered Graphene Nanosheets journal July 2009
Large Reversible Li Storage of Graphene Nanosheet Families for Use in Rechargeable Lithium Ion Batteries journal August 2008
Phosphorus and Nitrogen Dual-Doped Few-Layered Porous Graphene: A High-Performance Anode Material for Lithium-Ion Batteries journal August 2014

Cited By (10)

A Top-Down Strategy toward SnSb In-Plane Nanoconfined 3D N-Doped Porous Graphene Composite Microspheres for High Performance Na-Ion Battery Anode journal January 2018
Reducing the Charge Carrier Transport Barrier in Functionally Layer-Graded Electrodes journal October 2017
Ultrathin Layered SnSe Nanoplates for Low Voltage, High-Rate, and Long-Life Alkali-Ion Batteries journal October 2017
Nitrogen-Enriched Carbon/CNT Composites Based on Schiff-Base Networks: Ultrahigh N Content and Enhanced Lithium Storage Properties journal February 2018
Graphene Caging Silicon Particles for High-Performance Lithium-Ion Batteries journal May 2018
Spiro-fused bis-hexa- peri -hexabenzocoronene journal January 2018
A highly conductive, transparent molecular charge-transfer salt with reversible lithiation journal January 2019
Fabrication of an anode composed of a N, S co-doped carbon nanotube hollow architecture with CoS 2 confined within: toward Li and Na storage journal January 2019
Multi nitrogen doped small honeycomb structure: investigation of their on SEM and TEM microscopy dynamic hierarchal self-assembles for high performance anodes lithium ion storage journal May 2019
Reducing the Charge Carrier Transport Barrier in Functionally Layer-Graded Electrodes journal October 2017

Figures / Tables (4)