Long Phan
University of California, Irvine
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Publication
Featured researches published by Long Phan.
Nature Chemistry | 2014
David D. Ordinario; Long Phan; Ward G. Walkup; Jonah-Micah Jocson; Emil Karshalev; Nina Hüsken; Alon A. Gorodetsky
Proton-conducting materials play a central role in many renewable energy and bioelectronics technologies, including fuel cells, batteries and sensors. Thus, much research effort has been expended to develop improved proton-conducting materials, such as ceramic oxides, solid acids, polymers and metal-organic frameworks. Within this context, bulk proton conductors from naturally occurring proteins have received somewhat less attention than other materials, which is surprising given the potential modularity, tunability and processability of protein-based materials. Here, we report proton conductivity for thin films composed of reflectin, a cephalopod structural protein. Bulk reflectin has a proton conductivity of ~2.6 × 10(-3) S cm(-1) at 65 °C, a proton transport activation energy of ~0.2 eV and a proton mobility of ~7 × 10(-3) cm(2) V(-1) s(-1). These figures of merit are similar to those reported for state-of-the-art artificial proton conductors and make it possible to use reflectin in protein-based protonic transistors. Our findings may hold implications for the next generation of biocompatible proton-conducting materials and protonic devices.
Advanced Materials | 2013
Long Phan; Ward G. Walkup; David D. Ordinario; Emil Karshalev; Jonah-Micah Jocson; Anthony M. Burke; Alon A. Gorodetsky
In nature, cephalopods employ unique dynamic camouflage mechanisms. Herein, we draw inspiration from self-assembled structures found in cephalopods to fabricate tunable biomimetic camouflage coatings. The reflectance of these coatings is dynamically modulated between the visible and infrared regions of the electromagnetic spectrum in situ. Our studies represent a crucial step towards reconfigurable and disposable infrared camouflage for stealth applications.
Journal of Materials Chemistry C | 2015
Long Phan; David D. Ordinario; Emil Karshalev; Ward G. Walkup; Michael A. Shenk; Alon A. Gorodetsky
The skin morphology of cephalopods endows them with remarkable dynamic camouflage capabilities. Cephalopod skin has therefore served as an inspiration for the design of camouflage devices that function in the visible region of the electromagnetic spectrum. In contrast, despite the importance of infrared signaling and detection for numerous industrial and military applications, there have been fewer attempts to translate the principles underlying cephalopod adaptive coloration to infrared camouflage systems. Herein, we draw inspiration from the structures and proteins found in cephalopod skin to fabricate biomimetic camouflage coatings on transparent and flexible adhesive substrates. The substrates can be deployed on arbitrary surfaces, and we can reversibly modulate their reflectance from the visible to the near infrared regions of the electromagnetic spectrum with a mechanical stimulus. These stickers make it possible to disguise common objects with varied roughnesses and geometries from infrared visualization. Our findings represent a key step towards the development of wearable biomimetic color- and shape-shifting technologies for stealth applications.
APL Materials | 2015
David D. Ordinario; Long Phan; Jonah-Micah Jocson; Tam Nguyen; Alon A. Gorodetsky
Ionic transistors from organic and biological materials hold great promise for bioelectronics applications. Thus, much research effort has focused on optimizing the performance of these devices. Herein, we experimentally validate a straightforward strategy for enhancing the high to low current ratios of protein-based protonic transistors. Upon reducing the thickness of the transistors’ active layers, we increase their high to low current ratios 2-fold while leaving the other figures of merit unchanged. The measured ratio of 3.3 is comparable to the best values found for analogous devices. These findings underscore the importance of the active layer geometry for optimum protonic transistor functionality.
Advanced Materials | 2016
Kyle L. Naughton; Long Phan; Erica M. Leung; Rylan Kautz; Qiyin Lin; Yegor Van Dyke; Benedetta Marmiroli; Barbara Sartori; Andy Arvai; Sheng Li; Michael E. Pique; Mahan Naeim; Justin P. Kerr; Mercedeez J. Aquino; Victoria A. Roberts; Elizabeth D. Getzoff; Chenhui Zhu; Sigrid Bernstorff; Alon A. Gorodetsky
Films from the cephalopod protein reflectin demonstrate multifaceted functionality as infrared camouflage coatings, proton transport media, and substrates for growth of neural stem cells. A detailed study of the in vitro formation, structural characteristics, and stimulus response of such films is presented. The reported observations hold implications for the design and development of advanced cephalopod-inspired functional materials.
Analytical Chemistry | 2014
David D. Ordinario; Anthony M. Burke; Long Phan; Jonah-Micah Jocson; Hanfei Wang; Mary N. Dickson; Alon A. Gorodetsky
Protein-DNA interactions play a central role in many cellular processes, and their misregulation has been implicated in a number of human diseases. Thus, there is a pressing need for the development of analytical strategies for interrogating the binding of proteins to DNA. Herein, we report the electrical monitoring of a prototypical DNA-binding protein, the PvuII restriction enzyme, at microfluidic-encapsulated, DNA-modified carbon nanotube field effect transistors. Our integrated platform enables the sensitive, sequence specific detection of PvuII at concentrations as low as 0.5 pM in a volume of 0.025 μL (corresponding to ~7500 proteins). These figures of merit compare favorably to state of the art values reported for alternative fluorescent and electrical assays. The overall detection strategy represents a step toward the massively parallel electrical monitoring, identification, and quantification of protein-DNA interactions at arrayed nanoscale devices.
RSC Advances | 2016
David D. Ordinario; Long Phan; Ward G. Walkup; Yegor Van Dyke; Erica M. Leung; Michael Nguyen; Amanda G. Smith; Justin P. Kerr; Mahan Naeim; Ioannis Kymissis; Alon A. Gorodetsky
Cephalopods have recently emerged as a source of inspiration for the development of novel functional materials. Within this context, a number of studies have explored structural proteins known as reflectins, which play a key role in cephalopod adaptive coloration in vivo and exhibit interesting properties in vitro. Herein, we report an improved high-yield strategy for the preparation and isolation of reflectins in quantities sufficient for materials applications. We first select the Doryteuthis (Loligo) pealeii reflectin A2 (RfA2) isoform as a “model” system and validate our approach for the expression and purification of this protein. We in turn fabricate RfA2-based two-terminal devices and employ both direct and alternating current measurements to demonstrate that RfA2 films conduct protons. Our findings underscore the potential of reflectins as functional materials and may allow a wider range of researchers to investigate their properties.
Chemistry of Materials | 2016
Long Phan; Rylan Kautz; Erica M. Leung; Kyle L. Naughton; Yegor Van Dyke; Alon A. Gorodetsky
Chemistry of Materials | 2016
David D. Ordinario; Long Phan; Yegor Van Dyke; Tam Nguyen; Amanda G. Smith; Michael Nguyen; Nikka M. Mofid; MyAnh Kaylee Dao; Alon A. Gorodetsky
Advanced Optical Materials | 2017
David D. Ordinario; Erica M. Leung; Long Phan; Rylan Kautz; Woo Kyung Lee; Mahan Naeim; Justin P. Kerr; Mercedeez J. Aquino; Paul E. Sheehan; Alon A. Gorodetsky