Publications of Akimitsu Narita
All genres
Journal Article (198)
181.
Journal Article
17 (34), pp. 21988 - 21996 (2015)
Charge carrier mobilities in organic semiconductors: crystal engineering and the importance of molecular contacts. Physical Chemistry Chemical Physics 182.
Journal Article
7 (30), pp. 12807 - 12811 (2015)
Tuning the deposition of molecular graphene nanoribbons by surface functionalization. Nanoscale 183.
Journal Article
15 (1), pp. 295 - 309 (2015)
Bottom-Up Synthesis of Chemically Precise Graphene Nanoribbons. Chemical Record 184.
Journal Article
44 (18), pp. 6616 - 6643 (2015)
New advances in nanographene chemistry. Chemical Society Reviews 185.
Journal Article
137 (45), pp. 14525 - 14532 (2015)
Free-Standing Mono layer Two-Dimensional Supramolecular Organic Framework with Good Internal Order. Journal of the American Chemical Society 186.
Journal Article
10 (10), pp. 2134 - 2138 (2015)
Bottom-Up Synthesis of Necklace-Like Graphene Nanoribbons. Chemistry – An Asian Journal 187.
Journal Article
137 (24), pp. 7668 - 7671 (2015)
B2N2-Dibenzo[a,e]pentalenes: Effect of the BN Orientation Pattern on Antiaromaticity and Optoelectronic Properties. Journal of the American Chemical Society 188.
Journal Article
1 (3), 1400010 (2015)
Electrical Characteristics of Field-Effect Transistors based on Chemically Synthesized Graphene Nanoribbons. Advanced Electronic Materials 189.
Journal Article
136 (21), pp. 7555 - 7558 (2014)
Deposition, Characterization, and Thin-Film-Based Chemical Sensing of Ultra-long Chemically Synthesized Graphene Nanoribbons. Journal of the American Chemical Society 190.
Journal Article
6 (12), pp. 6301 - 6314 (2014)
Graphene nanoribbon blends with P3HT for organic electronics. Nanoscale 191.
Journal Article
6 (2), pp. 126 - 132 (2014)
Synthesis of structurally well-defined and liquid-phase-processable graphene nanoribbons. Nature Chemistry 192.
Journal Article
8 (11), pp. 11622 - 11630 (2014)
Bottom-Up Synthesis of Liquid-Phase-Processable Graphene Nanoribbons with Near-Infrared Absorption. ACS Nano 193.
Journal Article
13 (12), pp. 5925 - 5930 (2013)
Ultrafast Photoconductivity of Graphene Nanoribbons and Carbon Nanotubes. Nano Letters 194.
Journal Article
113 (20), 203706 (2013)
Bipolar resistive switching properties of Ti-CuO/(hexafluoro-hexa-peri-hexabenzocoronene)-Cu hybrid interface device: Influence of electronic nature of organic layer. Journal of Applied Physics 195.
Journal Article
4, 2646 (2013)
Atomically precise edge chlorination of nanographenes and its application in graphene nanoribbons. Nature Communications 196.
Journal Article
209 (4), pp. 785 - 789 (2012)
Large polycyclic aromatic hydrocarbons for application in donor-acceptor photovoltaics. Physica Status Solidi A-Applications and Materials Science 197.
Journal Article
6 (6), pp. 5539 - 5548 (2012)
Graphene Nanoribbons as Low Band Gap Donor Materials for Organic Photovoltaics: Quantum Chemical Aided Design. ACS Nano 198.
Journal Article
134 (44), pp. 18169 - 18172 (2012)
Structurally Defined Graphene Nanoribbons with High Lateral Extension. Journal of the American Chemical Society Conference Paper (7)
199.
Conference Paper
Cove-edged nanographenes as a potential optical-gain media for lasing. In: Technical digest series. Optical Devices and Materials for Solar Energy and Solid-state Lighting, from the session New LED Spectral Regimes and Gain Media (PvTu1H), Maastricht, July 24, 2022 - July 28, 2022. Optica Publishing Group (2022)
200.
Conference Paper
Short-Channel Double-Gate FETs with Atomically Precise Graphene Nanoribbons. In: 2021 IEEE INTERNATIONAL ELECTRON DEVICES MEETING (IEDM). IEEE International Electron Devices Meeting (IEDM), San Francisco, CA, December 11, 2021 - December 16, 2021. Institute of Electrical and Electronics Engineers. Electron Devices Group, New York, NY (2021)