M. A. Butt, A. Kaźmierczak, C. Tyszkiewicz, P. Karasiński, Edyta Środa, J. Olszewski, P. Pala, T. Martynkien, D. Hlushchenko, T. Baraniecki, A. Bachmatiuk, A. Jusza, M. Guzik, R. Piramidowicz
{"title":"HYPHa project: a low-cost alternative for integrated photonics","authors":"M. A. Butt, A. Kaźmierczak, C. Tyszkiewicz, P. Karasiński, Edyta Środa, J. Olszewski, P. Pala, T. Martynkien, D. Hlushchenko, T. Baraniecki, A. Bachmatiuk, A. Jusza, M. Guzik, R. Piramidowicz","doi":"10.4302/plp.v14i2.1145","DOIUrl":null,"url":null,"abstract":"In this paper, a brief introduction to the Hybrid sensor platforms of integrated photonic systems based on ceramic and polymer materials (HYPHa) is presented. The project's goal is to establish a collaborative effort of institutes specialized in integrated optics. The newly formed group of professionals will be founded on research groups' experience, collaboration, and devotion. We intend to develop a method for combining competencies and a universal material platform for integrated photonics, based on newly validated hybrid materials as part of the project. Silica compounds with additions including TiO2, SnO2, used as structural matrices, polymer coatings with dopants (active or protective layers), organic dyes, and active two-dimensional materials such as transition metal dichalcogenides, graphene hybrids, and boron nitride will be the foundation for these materials. Full Text: PDF ReferencesK. Rola, A. Zajac, M. Czajkowski, A. Szpecht, M. Zdonczyk, M. Smiglak, J. Cybinska, K. Komorowska, \"Ionic liquids for active photonics components fabrication\", Opt. Mater. 89, 106-111 (2019). CrossRef D. Kowal, K. Rola, J. Cybinska, M. Skorenski, A. Zajac, A. Szpecht, M. Smiglak, S. Drobczynski, K. Ciesiolkiewicz, K. Komorowska, \"Fluorescent ionic liquid micro reservoirs fabricated by dual-step E-beam patterning\", Mater. Res. Bull. 142, 111434 (2021). CrossRef T. Martynkien, J. Olszewski, M. Szpulak, G. Golojuch, W. Urbanczyk, T. Nasilowski, F. Berghmans, and H. Thienpont, \"Experimental investigations of bending loss oscillations in large mode area photonic crystal fibers\", Opt. Express 15, 13547-13556 (2007). CrossRef E. Środa, J. Olszewski, and W. Urbańczyk, \"Reducing bend-induced loss and crosstalk in a two-mode ridge waveguide by steplike thickness structuring\", Appl. Opt. 61, 1164-1170 (2022). CrossRef P. Karasinski, C. Tyszkiewicz, A. Domanowska, A. Michalewicz, J. Mazur, \"Low loss, long time stable sol–gel derived silica–titania waveguide films\", Mater. Lett. 143, 5-7 (2015). CrossRef P. Karasinski, C. Tyszkiewicz, A. Maciaga, I.V. Kityk, E. Gondek, \"Two-component waveguide SiO2:TiO2 films fabricated by sol–gel technology for optoelectronic applications\", J. of Mater. Sci.: Mater. Electron. 26, 2733-2736 (2015). CrossRef M.A. Butt, A. Kazmierczak, C. Tyszkiewicz, P. Karasinski, R. Piramidowicz, \"Mode Sensitivity Exploration of Silica–Titania Waveguide for Refractive Index Sensing Applications\", Sensors 21, 7452 (2021). CrossRef A. Kazmierczak, M. Slowikowski, K. Pavlov, M. Filipiak, M. Vervaeke, C. Tyszkiewicz, H. Ottevaere, R. Piramidowicz, P. Karasinski, \"Efficient, low-cost optical coupling mechanism for TiO2-SiO2 sol-gel derived slab waveguide surface grating coupler sensors\", Opt. Appl. 50, 539 (2020). CrossRef M.A. Butt, S.N. Khonina, N.L. Kazanskiy, \"A highly sensitive design of subwavelength grating double-slot waveguide microring resonator\", Laser Phys. Lett. 17, 076201 (2020). CrossRef N.L. Kazanskiy, M.A. Butt, S.N. Khonina, \"Silicon photonic devices realized on refractive index engineered subwavelength grating waveguides-A review\", Opt. Laser Technol. 138, 106863 (2021). CrossRef M.A. Butt, S.N. Khonina, N.L. Kazanskiy, \"Recent advances in photonic crystal optical devices: A review\", Opt. Laser Technol. 142, 107265 (2021). CrossRef L. Xu, Y. Wang, E. El-Fiky, D. Mao, A. Kumar, Z. Xing, Md. G. Saber, M. Jacques, D.V. Plant, \"Compact Broadband Polarization Beam Splitter Based on Multimode Interference Coupler With Internal Photonic Crystal for the SOI Platform\", J. Light. Technol. 37, 1231 (2019). CrossRef R. Marchetti, C. Lacava, A. Khokhar, X. Chen, I. Cristiani, D.J. Richardson, G. T. Reed, P. Petropoulos, P. Minzioni, \"High-efficiency grating-couplers: demonstration of a new design strategy\", Sci. Rep. 7, 16670 (2017). CrossRef","PeriodicalId":20055,"journal":{"name":"Photonics Letters of Poland","volume":" ","pages":""},"PeriodicalIF":0.5000,"publicationDate":"2022-07-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"1","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Photonics Letters of Poland","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.4302/plp.v14i2.1145","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q4","JCRName":"OPTICS","Score":null,"Total":0}
引用次数: 1
Abstract
In this paper, a brief introduction to the Hybrid sensor platforms of integrated photonic systems based on ceramic and polymer materials (HYPHa) is presented. The project's goal is to establish a collaborative effort of institutes specialized in integrated optics. The newly formed group of professionals will be founded on research groups' experience, collaboration, and devotion. We intend to develop a method for combining competencies and a universal material platform for integrated photonics, based on newly validated hybrid materials as part of the project. Silica compounds with additions including TiO2, SnO2, used as structural matrices, polymer coatings with dopants (active or protective layers), organic dyes, and active two-dimensional materials such as transition metal dichalcogenides, graphene hybrids, and boron nitride will be the foundation for these materials. Full Text: PDF ReferencesK. Rola, A. Zajac, M. Czajkowski, A. Szpecht, M. Zdonczyk, M. Smiglak, J. Cybinska, K. Komorowska, "Ionic liquids for active photonics components fabrication", Opt. Mater. 89, 106-111 (2019). CrossRef D. Kowal, K. Rola, J. Cybinska, M. Skorenski, A. Zajac, A. Szpecht, M. Smiglak, S. Drobczynski, K. Ciesiolkiewicz, K. Komorowska, "Fluorescent ionic liquid micro reservoirs fabricated by dual-step E-beam patterning", Mater. Res. Bull. 142, 111434 (2021). CrossRef T. Martynkien, J. Olszewski, M. Szpulak, G. Golojuch, W. Urbanczyk, T. Nasilowski, F. Berghmans, and H. Thienpont, "Experimental investigations of bending loss oscillations in large mode area photonic crystal fibers", Opt. Express 15, 13547-13556 (2007). CrossRef E. Środa, J. Olszewski, and W. Urbańczyk, "Reducing bend-induced loss and crosstalk in a two-mode ridge waveguide by steplike thickness structuring", Appl. Opt. 61, 1164-1170 (2022). CrossRef P. Karasinski, C. Tyszkiewicz, A. Domanowska, A. Michalewicz, J. Mazur, "Low loss, long time stable sol–gel derived silica–titania waveguide films", Mater. Lett. 143, 5-7 (2015). CrossRef P. Karasinski, C. Tyszkiewicz, A. Maciaga, I.V. Kityk, E. Gondek, "Two-component waveguide SiO2:TiO2 films fabricated by sol–gel technology for optoelectronic applications", J. of Mater. Sci.: Mater. Electron. 26, 2733-2736 (2015). CrossRef M.A. Butt, A. Kazmierczak, C. Tyszkiewicz, P. Karasinski, R. Piramidowicz, "Mode Sensitivity Exploration of Silica–Titania Waveguide for Refractive Index Sensing Applications", Sensors 21, 7452 (2021). CrossRef A. Kazmierczak, M. Slowikowski, K. Pavlov, M. Filipiak, M. Vervaeke, C. Tyszkiewicz, H. Ottevaere, R. Piramidowicz, P. Karasinski, "Efficient, low-cost optical coupling mechanism for TiO2-SiO2 sol-gel derived slab waveguide surface grating coupler sensors", Opt. Appl. 50, 539 (2020). CrossRef M.A. Butt, S.N. Khonina, N.L. Kazanskiy, "A highly sensitive design of subwavelength grating double-slot waveguide microring resonator", Laser Phys. Lett. 17, 076201 (2020). CrossRef N.L. Kazanskiy, M.A. Butt, S.N. Khonina, "Silicon photonic devices realized on refractive index engineered subwavelength grating waveguides-A review", Opt. Laser Technol. 138, 106863 (2021). CrossRef M.A. Butt, S.N. Khonina, N.L. Kazanskiy, "Recent advances in photonic crystal optical devices: A review", Opt. Laser Technol. 142, 107265 (2021). CrossRef L. Xu, Y. Wang, E. El-Fiky, D. Mao, A. Kumar, Z. Xing, Md. G. Saber, M. Jacques, D.V. Plant, "Compact Broadband Polarization Beam Splitter Based on Multimode Interference Coupler With Internal Photonic Crystal for the SOI Platform", J. Light. Technol. 37, 1231 (2019). CrossRef R. Marchetti, C. Lacava, A. Khokhar, X. Chen, I. Cristiani, D.J. Richardson, G. T. Reed, P. Petropoulos, P. Minzioni, "High-efficiency grating-couplers: demonstration of a new design strategy", Sci. Rep. 7, 16670 (2017). CrossRef
本文简要介绍了基于陶瓷和高分子材料的集成光子系统混合传感器平台。该项目的目标是建立一个专门研究集成光学的研究所的合作努力。新成立的专业小组将建立在研究小组的经验,合作和奉献的基础上。作为该项目的一部分,我们打算基于新验证的混合材料,开发一种结合能力和集成光子学通用材料平台的方法。二氧化硅化合物添加物包括二氧化钛,SnO2,用作结构基质,聚合物涂层掺杂剂(活性或保护层),有机染料和活性二维材料,如过渡金属二硫族化合物,石墨烯杂化物和氮化硼将成为这些材料的基础。全文:PDF ReferencesKRola, A. Zajac, M. Czajkowski, A. Szpecht, M. Zdonczyk, M. Smiglak, J. Cybinska, K. Komorowska,“离子液体在有源光子元件制造中的应用”,光子学报,89,106-111(2019)。CrossRef D. koal, K. Rola, J. Cybinska, M. Skorenski, A. Zajac, A. Szpecht, M. Smiglak, S. Drobczynski, K. Ciesiolkiewicz, K. Komorowska,“双阶电子束模式制备的荧光离子液体微储层”,硕士论文。参考文献142,111434(2021)。[CrossRef] T. Martynkien, J. Olszewski, M. Szpulak, G. Golojuch, W. Urbanczyk, T. Nasilowski, F. Berghmans, H. Thienpont,“大模区光子晶体光纤弯曲损耗振荡的实验研究”,光子学报,15,13547-13556(2007)。CrossRef E. Środa, J. Olszewski,和W. Urbańczyk,“用阶梯厚度结构减少双模脊波导中弯曲引起的损耗和串扰”,applied。光学学报,61,1164-1170(2022)。[CrossRef] P. Karasinski, C. Tyszkiewicz, A. Domanowska, A. Michalewicz, J. Mazur,“低损耗、长时间稳定的溶胶-凝胶制备的二氧化硅-二氧化钛波导薄膜”,高分子学报。《社会科学》,2015年第5期。陈晓明,陈晓明,陈晓明,“溶胶-凝胶技术制备二氧化钛光波导的研究进展”,高分子学报。科学。:母亲。电子学报,26,2733-2736(2015)。CrossRef M.A. Butt, A. Kazmierczak, C. Tyszkiewicz, P. Karasinski, R. Piramidowicz,“用于折射率传感的二氧化硅-二氧化钛波导的模式灵敏度研究”,传感器21,7452(2021)。CrossRef A. Kazmierczak, M. Slowikowski, K. Pavlov, M. Filipiak, M. Vervaeke, C. Tyszkiewicz, H. Ottevaere, R. Piramidowicz, P. Karasinski,“TiO2-SiO2溶胶-凝胶平板波导表面光栅耦合器传感器的高效、低成本光学耦合机制”,光学学报,50,539(2020)。CrossRef M.A. Butt, S.N. Khonina, N.L. kazansky,“亚波长光栅双槽波导微环谐振器的高灵敏度设计”,激光物理。通讯学报,17,076201(2020)。[CrossRef] N.L. Kazanskiy, M.A. Butt, S.N. Khonina,“折射率工程亚波长光栅波导的硅光子器件研究进展”,光学技术,138,108,63(2021)。CrossRef M.A. Butt, S.N. Khonina, N.L. Kazanskiy,“光子晶体光学器件的研究进展”,光学学报,42(2),1065(2021)。徐丽丽,王勇,E. El-Fiky,毛D., A. Kumar,邢中,Md. G. Saber, M. Jacques, D.V. Plant,“基于内部光子晶体多模干涉耦合器的SOI平台紧凑型宽带偏振分束器”,J. Light。科学通报,2016,31(2019)。CrossRef R. Marchetti, C. Lacava, a . Khokhar, X. Chen, I. Cristiani, D.J. Richardson, G. T. Reed, P. Petropoulos, P. Minzioni,“高效光栅耦合器:一种新的设计策略”,科学与工程学报。众议员7,16670(2017)。CrossRef