Optiwave software can be used in different industries and applications, including Fiber Optic Communication, Sensing, Pharma/Bio, Military & Satcom, Test & Measurement, Fundamental Research, Solar Panels, Components / Devices, etc..
OptiSystem is a comprehensive software design suite that enables users to plan, test, and simulate optical links in the transmission layer of modern optical networks.
OptiSPICE is the first circuit design software for analysis of integrated circuits including interactions of optical and electronic components. It allows for the design and simulation of opto-electronic circuits at the transistor level, from laser drivers to transimpedance amplifiers, optical interconnects and electronic equalizers.
OptiFDTD is a powerful, highly integrated, and user friendly CAD environment that enables the design and simulation of advanced passive and non-linear photonic components.
OptiBPM is a comprehensive CAD environment used for the design of complex optical waveguides. Perform guiding, coupling, switching, splitting, multiplexing, and demultiplexing of optical signals in photonic devices.
OptiFiber The optimal design of a given optical communication system depends directly on the choice of fiber parameters. OptiFiber uses numerical mode solvers and other models specialized to fibers for calculating dispersion, losses, birefringence, and PMD.
Emerging as a de facto standard over the last decade, OptiGrating has delivered powerful and user friendly design software for modeling integrated and fiber optic devices that incorporate optical gratings.
OptiConverge is a collaborative integration framework that seamlessly combines two or more Optiwave products (e.g., OptiSystem, OptiSPICE, OptiFDTD, etc.) and other third party products into unified solutions. Designed to streamline complex workflows, it empowers users to achieve their goals faster by harnessing the collective power of our trusted Optiwave tools.
Optiwave software can be used in different industries and applications, including Fiber Optic Communication, Sensing, Pharma/Bio, Military & Satcom, Test & Measurement, Fundamental Research, Solar Panels, Components / Devices, etc..
OptiSystem is a comprehensive software design suite that enables users to plan, test, and simulate optical links in the transmission layer of modern optical networks.
OptiSPICE is the first circuit design software for analysis of integrated circuits including interactions of optical and electronic components. It allows for the design and simulation of opto-electronic circuits at the transistor level, from laser drivers to transimpedance amplifiers, optical interconnects and electronic equalizers.
OptiFDTD is a powerful, highly integrated, and user friendly CAD environment that enables the design and simulation of advanced passive and non-linear photonic components.
OptiBPM is a comprehensive CAD environment used for the design of complex optical waveguides. Perform guiding, coupling, switching, splitting, multiplexing, and demultiplexing of optical signals in photonic devices.
OptiFiber The optimal design of a given optical communication system depends directly on the choice of fiber parameters. OptiFiber uses numerical mode solvers and other models specialized to fibers for calculating dispersion, losses, birefringence, and PMD.
Emerging as a de facto standard over the last decade, OptiGrating has delivered powerful and user friendly design software for modeling integrated and fiber optic devices that incorporate optical gratings.
OptiConverge is a collaborative integration framework that seamlessly combines two or more Optiwave products (e.g., OptiSystem, OptiSPICE, OptiFDTD, etc.) and other third party products into unified solutions. Designed to streamline complex workflows, it empowers users to achieve their goals faster by harnessing the collective power of our trusted Optiwave tools.
Home » Resources » OptiSPICE Publication References – 2018
Compatibility:
The following is a list of scientific papers, technical journals, periodicals, and conference publications which reference the use of OptiSPICE. These references were collected from internal sources, customer submitted papers, and scientific articles via Google Scholar – and to the best of our knowledge, make use of our OptiSPICE software package. If you locate any mistakes, please notify us immediately by contacting info@optiwave.com.
[1]de Sousa, Evan. “Electrothermal Analysis of Gallium Nitride Island Transistor eHEMT Devices for Fault Tolerant Design.” PhD diss., Carleton University, 2018.
[2]Leu, Jonathan Chung. “Integrated silicon photonic circuit simulation.” PhD diss., Massachusetts Institute of Technology, 2018.
[3]Ayala Labanda, María Geovanna, and María José Beltrán Cuatín. “Study of optical filters and analysis of their behavior through simulation.” Bachelor’s thesis, Quito, 2018., 2018.
[4]Makarevich, Alexander Leonidovich, Mikhail Sergeyevich Tokar, Alexander Viktorovich Kinash, and Vadim Alekseevich Chubarov. “VOLTAGE-CONTROLLED GENERATOR FOR DIGITAL SYNCHRONIZATION SYSTEMS.” Bulletin of the Transnistrian University. Series: Physics, Mathematics, and Engineering. Economics and Management 3 (2018): 47-53.
[5]Castañeda Romero, Paulo Alejandro. “Analysis and Simulation of the Chromatic Dispersion Phenomenon in the ITU-T G. 652 and ITU-T G. 655 Single Mode Optical Fiber.” Bachelor’s thesis, Quito, 2018., 2018.
[6]Čubík, Jakub. “Using existing metropolitan fiber optic networks to deliver useful information from optical sensors.” (2018)