Gomez Palacios Luna R, Bracamonte A Guillermo
Instituto de Investigaciones en Físico Química de Córdoba (INFIQC), Departamento de Química Orgánica, Facultad de Ciencias Químicas, Universidad Nacional de Córdoba (UNC) Ciudad Universitaria 5000 Córdoba Argentina
Department of Chemistry, University of Victoria (UVic) Vancouver Island V8W 2Y2 British Columbia (BC) Canada.
RSC Adv. 2022 Apr 27;12(20):12806-12822. doi: 10.1039/d2ra02008d. eCollection 2022 Apr 22.
This is a short communication based on recent high-impact publications related to how various chemical materials and substrate modifications could be tuned for nano- and microdevices, where their application for high point-of-care bioanalysis and further applications in life science is discussed. Hence, they have allowed different high-impact research topics in a variety of fields, from the control of nanoscale to functional microarchitectures embedded in various support materials to obtain a device for a given application or use. Thus, their incorporation in standard instrumentation is shown, as well as in new optical setups to record different classical and non-classical light, signaling, and energy modes at a variety of wavelengths and energy levels. Moreover, the development of miniaturized instrumentation was also contemplated. In order to develop these different levels of technology, the chemistry, physics and engineering of materials were discussed. In this manner, a number of subjects that allowed the design and manufacture of devices could be found. The following could be mentioned by way of example: (i) nanophotonics; (ii) design, synthesis and tuning of advanced nanomaterials; (iii) classical and non-classical light generation within the near field; (iv) microfluidics and nanofluidics; (v) signal waveguiding; (vi) quantum-, nano- and microcircuits; (vii) materials for nano- and microplatforms, and support substrates and their respective modifications for targeted functionalities. Moreover, nano-optics in in-flow devices and chips for biosensing were discussed, and perspectives on biosensing and single molecule detection (SMD) applications. In this perspective, new insights about precision nanomedicine based on genomics and drug delivery systems were obtained, incorporating new advanced diagnosis methods based on lab-on-particles, labs-on-a-chip, gene therapies, implantable devices, portable miniaturized instrumentation, single molecule detection for biophotonics, and neurophotonics. In this manner, this communication intends to highlight recent reports and developments of nano- and microdevices and further approaches towards the incorporation of developments in nanophotonics and biophotonics in the design of new materials based on different strategies and enhanced techniques and methods. Recent proofs of concept are discussed that could allow new substrates for device manufacturing. Thus, physical phenomena and materials chemistry with accurate control within the nanoscale were introduced into the discussion. In this manner, new potential sources of ideas and strategies for the next generation of technology in many research and development fields are showcased.
这是一篇简短的通讯,基于近期的高影响力出版物,内容涉及如何针对纳米和微器件调整各种化学材料及基底修饰,并探讨了它们在即时医疗生物分析中的应用以及在生命科学中的进一步应用。因此,它们在从纳米尺度控制到嵌入各种支撑材料中的功能微结构等多个领域催生了不同的高影响力研究课题,以获得适用于特定应用或用途的器件。文中展示了它们在标准仪器中的应用,以及在新的光学装置中的应用,这些光学装置可在各种波长和能级下记录不同的经典和非经典光、信号及能量模式。此外,还考虑了小型化仪器的发展。为了开发这些不同层次的技术,文中讨论了材料的化学、物理和工程学。通过这种方式,可以找到许多有助于器件设计和制造的主题。例如,可以提及以下几点:(i)纳米光子学;(ii)先进纳米材料的设计、合成和调控;(iii)近场中的经典和非经典光产生;(iv)微流体学和纳流体学;(v)信号波导;(vi)量子、纳米和微电路;(vii)用于纳米和微平台的材料、支撑基底及其针对特定功能的各自修饰。此外,还讨论了用于生物传感的流入式器件和芯片中的纳米光学,以及生物传感和单分子检测(SMD)应用的前景。从这个角度出发,基于基因组学和药物递送系统获得了关于精准纳米医学的新见解,纳入了基于粒子实验室、芯片实验室、基因疗法、可植入器件、便携式小型化仪器、生物光子学的单分子检测以及神经光子学的新先进诊断方法。通过这种方式,本通讯旨在突出纳米和微器件的近期报道和发展,以及在基于不同策略和增强技术与方法的新材料设计中纳入纳米光子学和生物光子学发展的进一步方法。文中讨论了近期的概念验证,这些验证可为器件制造提供新的基底。因此,将纳米尺度内精确控制的物理现象和材料化学引入了讨论。通过这种方式,展示了许多研发领域下一代技术的新潜在思想和策略来源。