Academic literature on the topic 'OPTOELECTRONICS APPLICATIONS'

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Journal articles on the topic "OPTOELECTRONICS APPLICATIONS"

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Soref, Richard. "Applications of Silicon-Based Optoelectronics." MRS Bulletin 23, no. 4 (1998): 20–24. http://dx.doi.org/10.1557/s0883769400030220.

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Silicon-based optoelectronics is a diversified technology that has grown steadily but not exponentially over the past decade. Some applications—such as smart-pixel signal processing and chip-to-chip optical interconnects—have enjoyed impressive growth, whereas other applications have remained quiescent. A few important applications such as optical diagnosis of leaky metal-oxide-semiconductor-field-effect-transistor circuits, have appeared suddenly. Over the years, research and development has unveiled some unique and significant aspects of Si-based optoelectronics. The main limitation of this
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Amariucai-Mantu, Dorina, Violeta Mangalagiu, and Ionel I. Mangalagiu. "[3 + n] Cycloaddition Reactions: A Milestone Approach for Elaborating Pyridazine of Potential Interest in Medicinal Chemistry and Optoelectronics." Molecules 26, no. 11 (2021): 3359. http://dx.doi.org/10.3390/molecules26113359.

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During the last few decades, pyridazine derivatives have emerged as privileged structures in heterocyclic chemistry, both because of their excellent chemistry and because of their potential applications in medicinal chemistry and optoelectronics. This review is focused on the recent advances in [3 + n] cycloaddition reactions in the pyridazine series as well as their medicinal chemistry and optoelectronic applications over the last ten years. The stereochemistry and regiochemistry of the cycloaddition reactions are discussed. Applications in optoelectronics (in particular, as fluorescent mater
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Wang, Yuyin, Shiguo Han, Xitao Liu, et al. "Exploring a lead-free organic–inorganic semiconducting hybrid with above-room-temperature dielectric phase transition." RSC Advances 10, no. 30 (2020): 17492–96. http://dx.doi.org/10.1039/c9ra09289g.

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Zhao, Mingyue, Yurui Hao, Chen Zhang, et al. "Advances in Two-Dimensional Materials for Optoelectronics Applications." Crystals 12, no. 8 (2022): 1087. http://dx.doi.org/10.3390/cryst12081087.

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The past one and a half decades have witnessed the tremendous progress of two-dimensional (2D) crystals, including graphene, transition-metal dichalcogenides, black phosphorus, MXenes, hexagonal boron nitride, etc., in a variety of fields. The key to their success is their unique structural, electrical, mechanical and optical properties. Herein, this paper gives a comprehensive summary on the recent advances in 2D materials for optoelectronic approaches with the emphasis on the morphology and structure, optical properties, synthesis methods, as well as detailed optoelectronic applications. Add
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Chen, K. T. "Applications '90: Soviet optoelectronics." IEEE Spectrum 27, no. 2 (1990): 44–45. http://dx.doi.org/10.1109/6.45079.

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Yu, Jia, Shiru Wu, Xun Zhao, et al. "Progress on Two-Dimensional Transitional Metal Dichalcogenides Alloy Materials: Growth, Characterisation, and Optoelectronic Applications." Nanomaterials 13, no. 21 (2023): 2843. http://dx.doi.org/10.3390/nano13212843.

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Two-dimensional (2D) transitional metal dichalcogenides (TMDs) have garnered remarkable attention in electronics, optoelectronics, and hydrogen precipitation catalysis due to their exceptional physicochemical properties. Their utilisation in optoelectronic devices is especially notable for overcoming graphene’s zero-band gap limitation. Moreover, TMDs offer advantages such as direct band gap transitions, high carrier mobility, and efficient switching ratios. Achieving precise adjustments to the electronic properties and band gap of 2D semiconductor materials is crucial for enhancing their capa
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Luo, Xianqi. "Applications of 2D semiconductor materials in electronics and optoelectronics." Highlights in Science, Engineering and Technology 87 (March 26, 2024): 148–54. http://dx.doi.org/10.54097/pj6few58.

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Due to the demand for the higher performance of electronic and optoelectronic devices, the research of 2D semiconductor materials is very important nowadays. Because of the excellent electronic and optoelectronic properties of 2D semiconductor materials can be applied in many fields. This article mainly introduced the preparation, properties and applications of 2D semiconductor materials. The applications in electronics and optoelectronics are mainly discussed, such logic gates, field effect transistors light emitting diodes and high responsivity photodetectors. Compared to traditional semicon
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Wu, Jing, Yunshan Zhao, Minglei Sun, et al. "Enhanced photoresponse of highly air-stable palladium diselenide by thickness engineering." Nanophotonics 9, no. 8 (2020): 2467–74. http://dx.doi.org/10.1515/nanoph-2019-0542.

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AbstractRecently, layered two-dimensional (2D) palladium diselenide (PdSe2), with a unique low- symmetry puckered pentagon atomic morphology, has emerged as a promising candidate for next-generation nanoelectronics and optoelectronics because of its chemical stability and extraordinary electrical properties. Moreover, PdSe2 possesses a strong thickness-dependent bandgap that varies from 0 eV for bulk to 1.3 eV for monolayer, which can further render its potential applications in optoelectronics. However, the layer-dependent optoelectronic properties of PdSe2 are still lacking up to date. Herei
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Godlewski, M., E. Wolska, S. Yatsunenko, et al. "Doped nanoparticles for optoelectronics applications." Low Temperature Physics 35, no. 1 (2009): 48–52. http://dx.doi.org/10.1063/1.3064908.

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Karamarković, J. "Essentials of optoelectronics with applications." Microelectronics Journal 29, no. 12 (1998): 1039. http://dx.doi.org/10.1016/s0026-2692(98)00010-x.

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Dissertations / Theses on the topic "OPTOELECTRONICS APPLICATIONS"

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Lee, Tae-Hee. "Silver nanocluster single molecule optoelectronics and its applications." Diss., Available online, Georgia Institute of Technology, 2004:, 2004. http://etd.gatech.edu/theses/available/etd-01302004-144007/unrestricted/lee%5Ftaehee%5F200405%5Fphd.pdf.

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Thesis (Ph. D.)--Chemistry and Biochemistry, Georgia Institute of Technology, 2004.<br>Srinivasarao, Mohan, Committee Member; Sherrill, C. David, Committee Member; Orlando, Thomas, Committee Member; EL-Sayed, Mostafa, Committee Member; Dickson, Robert, Committee Chair. Vita. Includes bibliographical references (leaves 136-159).
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Annetts, Paul Julian. "Advanced applications of semiconductor optical amplifiers." Thesis, University of Bristol, 1999. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.299275.

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Lansley, Stuart Peter. "Diamond photodetectors for deep ultra-violet applications." Thesis, University College London (University of London), 2002. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.269925.

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Occhi, Luca. "PEDOT:PSS-based hybrid materials for optoelectronics applications." Thesis, Imperial College London, 2017. http://hdl.handle.net/10044/1/61335.

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Organic electronics is a research area that, in recent year, has received increasing attention both from academia and industry. Performance of organic optoelectronic devices, such as organic light-emitting diodes (OLEDs) and organic photovoltaic devices (OPVs), relies on the electrical and optical characteristics of each component. However, the performance are frequently limited by the distribution of the internal electromagnetic field: an effective light management, involving either the incoupling of incident radiation (in case of photovoltaic cells and photo-detectors), or the outcoupling of
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Asil, Demet. "Hybrid functional semiconductors for optoelectronic applications." Thesis, University of Cambridge, 2015. https://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.708582.

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Moreira, Paulo Manuel Rodrigues Simões. "Optical receiver design and optimisation for multi-gigahertz applications." Thesis, Bangor University, 1993. https://research.bangor.ac.uk/portal/en/theses/optical-receiver-design-and-optimisation-for-multigigahertz-applications(851ce42c-3b48-488f-88c3-8f4137b79607).html.

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This thesis is concerned with structures and design techniques appropriate for the realisation of integrated optical receivers operating at multi-gigahertz frequencies. The development and practical proving of novel signal designs tailored specifically to very high bit-rate optical communication systems is reported. Timing imperfections and signal dependent noise - a result of the optical amplification deployed in all high-performance systems - are two major impairments that must be accommodated if optimum system performance is to be achieved. Here, a signal design that accommodates these impa
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Gebremichael, Yonas Meressi. "Highly birefringent fibre based polarisation modulated ellipsometry and sensor applications." Thesis, City University London, 2000. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.390940.

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Addington, J. Shawn. "Integrated optoelectronics applications in fiber optic receiver packaging." Diss., Virginia Tech, 1995. http://hdl.handle.net/10919/37463.

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The objective of this research is the' development and evaluation of a new style of integrated optoelectronics. The approach combines the selectivity of traditional hybrid integration with the "internal" interconnection capabilities of monolithic integration, through the use of low temperature cofireable ceramic (LTCC) tape systems. This new integration technique is applied to a fiber optic receiver system, and focuses on three main tasks. The first task involves the realization, and eventual hybridization, of the receiver electronics, including the photodetector and the associated amplifier c
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Pratt, Andrew Richard. "Control of indium migration on patterned substrates for optoelectronic device applications." Thesis, Imperial College London, 1995. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.307775.

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Moon, Kevin. "Design and characterisation of CCD detector systems for x-ray applications." Thesis, University of York, 1996. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.311014.

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Books on the topic "OPTOELECTRONICS APPLICATIONS"

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1959-, Lo Yu-Hwa, ed. Emerging optoelectronic technologies and applications. World Scientific, 1997.

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Maini, Anil Kumar. Lasers and optoelectronics: Fundamentals, devices, and applications. Wiley, 2013.

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Predeep, P. Optoelectronics: Devices and applications. InTech, 2011.

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Mitra, Dutta, and Stroscio Michael A. 1949-, eds. Advances in semiconductor lasers and applications to optoelectronics. World Scientific, 2000.

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Nunley, William. Infrared optoelectronics: Devices and applications. M. Dekker, 1987.

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1932-, Weber Marvin J., ed. Selected papers on phosphors, light emitting diodes, and scintillators: Applications of photoluminescence, cathodoluminescence, electroluminescence, and radioluminescence. SPIE Optical Engineering Press, 1998.

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M, Razeghi, Society of Photo-optical Instrumentation Engineers., Europtica Services I. C, American Physical Society, and International Conference on Physical Concepts of Materials for Novel Optoelectronic Device Applications (1990 : Aachen, Germany), eds. Physical concepts of materials for novel optoelectronic device applications II: Device physics and applications : 28 October-2 November 1990, Aachen, Federal Republic of Germany. SPIE, 1991.

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Brasche, Ulrich. Intelligent sensors: Technology, applications, and European markets. VDE-Verlag, 1989.

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Dave, Birtalan, Nunley William 1928-, and Nunley William 1928-, eds. Optoelectronics: Infrared-visible-ultraviolet devices and applications. 2nd ed. CRC Press, 2009.

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Haben, Michael S. Applications of optoelectronics in high-energy physics. University ofBirmingham, 1994.

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Book chapters on the topic "OPTOELECTRONICS APPLICATIONS"

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Imran, Mohd, Mohammad Shariq, and Mottahi Alam. "Optoelectronics for Biomedical Applications." In Nanomaterials for Optoelectronic Applications. Apple Academic Press, 2021. http://dx.doi.org/10.1201/9781003083948-8.

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Saulnier, J. "Lithium Niobate For Optoelectronic Applications." In Materials for Optoelectronics. Springer US, 1996. http://dx.doi.org/10.1007/978-1-4613-1317-5_11.

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Weber, Alexander. "Inter-Sublevel Transitions in Quantum Dots and Device Applications." In Nano-Optoelectronics. Springer Berlin Heidelberg, 2002. http://dx.doi.org/10.1007/978-3-642-56149-8_16.

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Khenfouch, Mohammed, Mimouna Baitoul, and Malik Maaza. "Graphene for the Elaboration of Nanocomposite Films for Optoelectronic Applications." In Graphene Optoelectronics. Wiley-VCH Verlag GmbH & Co. KGaA, 2014. http://dx.doi.org/10.1002/9783527677788.ch3.

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Tsai, Chen S. "Integrated Magnetooptic Bragg Cell Modules and Applications." In Guided-Wave Optoelectronics. Springer US, 1995. http://dx.doi.org/10.1007/978-1-4899-1039-4_30.

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Yue, Yang, Yuxi Fang, Wenpu Geng, and Changjing Bao. "Applications of SCG." In Advances in Optics and Optoelectronics. Springer Nature Singapore, 2024. http://dx.doi.org/10.1007/978-981-97-6584-3_10.

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Trivedi, Dhrupad A., and Neal G. Anderson. "Strained-Layer Superlattices for Polarization-Insensitive Integrated Waveguide Applications." In Guided-Wave Optoelectronics. Springer US, 1995. http://dx.doi.org/10.1007/978-1-4899-1039-4_26.

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Leonberger, Fred J., and Robert W. Ade. "Development and Applications of Commercial LiNbO3 Guided-Wave Devices." In Guided-Wave Optoelectronics. Springer US, 1995. http://dx.doi.org/10.1007/978-1-4899-1039-4_3.

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Dror, J., D. Mendlovic, E. Goldenberg, and N. Croitoru. "Infrared Plastic Waveguides for Surgical Applications." In LASER Optoelectronics in Medicine. Springer Berlin Heidelberg, 1988. http://dx.doi.org/10.1007/978-3-642-72870-9_12.

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Kubo, U., and K. Okada. "Medical Applications of KrF Excimer Laser." In LASER Optoelectronics in Medicine. Springer Berlin Heidelberg, 1988. http://dx.doi.org/10.1007/978-3-642-72870-9_7.

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Conference papers on the topic "OPTOELECTRONICS APPLICATIONS"

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Straub, Karl D. "Biomedical applications of FELs." In Optoelectronics '99 - Integrated Optoelectronic Devices, edited by Harold E. Bennett and David H. Dowell. SPIE, 1999. http://dx.doi.org/10.1117/12.352665.

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Wipiejewski, Torsten, Hans-Dieter Wolf, Lutz Korte, et al. "VCSELs for datacom applications." In Optoelectronics '99 - Integrated Optoelectronic Devices, edited by Kent D. Choquette and Chun Lei. SPIE, 1999. http://dx.doi.org/10.1117/12.347093.

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Kurtz, Ron M., Greg J. R. Spooner, Karin R. Sletten, et al. "Ophthalmic applications of femtosecond lasers." In Optoelectronics '99 - Integrated Optoelectronic Devices, edited by Murray K. Reed and Joseph Neev. SPIE, 1999. http://dx.doi.org/10.1117/12.351821.

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Li, Ming, Xi-Cheng Zhang, Gregg D. Sucha, and Donald J. Harter. "Portable terahertz system and its applications." In Optoelectronics '99 - Integrated Optoelectronic Devices, edited by Murray K. Reed and Joseph Neev. SPIE, 1999. http://dx.doi.org/10.1117/12.351830.

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Marion II, John E., and Beop-Min Kim. "Medical applications of ultrashort-pulse lasers." In Optoelectronics '99 - Integrated Optoelectronic Devices, edited by Murray K. Reed and Joseph Neev. SPIE, 1999. http://dx.doi.org/10.1117/12.351839.

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Kurtz, David S., Robert M. Weikle II, Thomas W. Crowe, and Jeffrey L. Hesler. "Sideband generators for submillimeter-wave applications." In Optoelectronics '99 - Integrated Optoelectronic Devices, edited by Mark S. Sherwin. SPIE, 1999. http://dx.doi.org/10.1117/12.347112.

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Johnson, Eric G., Charles S. Koehler, Thomas J. Suleski, Jared D. Stack, and Michael R. Feldman. "Diffractive microrods for fiber optic applications." In Optoelectronics '99 - Integrated Optoelectronic Devices, edited by Ivan Cindrich, Sing H. Lee, and Richard L. Sutherland. SPIE, 1999. http://dx.doi.org/10.1117/12.349325.

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Munoz Merino, Elias, E. Monroy, Fernando Calle, et al. "AlGaN-based photodetectors for solar UV applications." In Optoelectronics '99 - Integrated Optoelectronic Devices, edited by Gail J. Brown and Manijeh Razeghi. SPIE, 1999. http://dx.doi.org/10.1117/12.344557.

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Sovetov, Nikolay M., Anatoly V. Nikonov, Dmitry A. Grigoriev, Andrey V. Khobotov, Victor A. Moskovsky, and Elena V. Naumova. "Atom projector: basic concept, construction, and applications." In Optoelectronics '99 - Integrated Optoelectronic Devices, edited by Jan J. Dubowski, Henry Helvajian, Ernst-Wolfgang Kreutz, and Koji Sugioka. SPIE, 1999. http://dx.doi.org/10.1117/12.352711.

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Shiratori, Akira, and Minoru Obara. "Photorefractive coherence gating for laser interferometric applications." In Optoelectronics '99 - Integrated Optoelectronic Devices, edited by Kathleen I. Schaffers and Lawrence E. Myers. SPIE, 1999. http://dx.doi.org/10.1117/12.349222.

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Reports on the topic "OPTOELECTRONICS APPLICATIONS"

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Czaplewski, David A., Darwin Keith Serkland, Roy H. ,. III Olsson, et al. Integrated NEMS and optoelectronics for sensor applications. Office of Scientific and Technical Information (OSTI), 2008. http://dx.doi.org/10.2172/950096.

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McIlroy, David. Two-Dimensional Photonic Crystals for Near IR and Visible Optoelectronics Applications. Defense Technical Information Center, 2005. http://dx.doi.org/10.21236/ada430192.

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Pasupuleti, Murali Krishna. 2D Quantum Materials for Next-Gen Semiconductor Innovation. National Education Services, 2025. https://doi.org/10.62311/nesx/rrvi425.

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Abstract The emergence of two-dimensional (2D) quantum materials is revolutionizing next-generation semiconductor technology, offering superior electronic, optical, and quantum properties compared to traditional silicon-based materials. 2D materials, such as graphene, transition metal dichalcogenides (TMDs), hexagonal boron nitride (hBN), and black phosphorus, exhibit high carrier mobility, tunable bandgaps, exceptional mechanical flexibility, and strong light-matter interactions, making them ideal candidates for ultra-fast transistors, spintronics, optoelectronic devices, and quantum computin
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Barron, Andrew R. Group III Materials: Molecular Design of New Phases with Applications in Electronics and Optoelectronics,. Defense Technical Information Center, 1996. http://dx.doi.org/10.21236/ada310607.

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Barron, Andrew R. Group III Materials: New Phases and Nano-Particles with Applications in Electronics and Optoelectronics. Defense Technical Information Center, 1999. http://dx.doi.org/10.21236/ada377550.

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Choi, Byung J. Innovative Nanoimprint Tools for Optoelectronic Applications. Defense Technical Information Center, 2002. http://dx.doi.org/10.21236/ada402061.

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Jacobs, Stephen, and Juergen Pohlmann. Optoelectronic Workshops 4: Liquid Crystals for Laser Applications. Defense Technical Information Center, 1988. http://dx.doi.org/10.21236/ada202526.

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Agrawal, Govind, and C. W. Trussell. Optoelectronic Workshops 27: Semiconductor Lasers and Their Applications. Defense Technical Information Center, 1990. http://dx.doi.org/10.21236/ada233779.

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Rose, B., and R. Keefe. AlGaAs/GaAs radiation-hardened photodiode for optoelectronic component applications. Office of Scientific and Technical Information (OSTI), 1989. http://dx.doi.org/10.2172/6000907.

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DiJaili, S. P. Novel operation of semiconductor optical amplifier (SOA) for optoelectronic applications. Office of Scientific and Technical Information (OSTI), 1996. http://dx.doi.org/10.2172/491215.

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