Lanthanide-based microlasers: Synthesis, structures, and biomedical applications

IF 9 2区 材料科学 Q1 CHEMISTRY, PHYSICAL Nano Research Pub Date : 2023-07-24 DOI:10.1007/s12274-023-5848-y
Qian Zhang, Yawei Liu, Kai Liu, Hongjie Zhang
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Abstract

The large size of lasers limits their applications in confined spaces, such as in biosensing and in vivo brain tissue imaging. In this regard, micron-sized lasers have been developed. They exhibit great potential for biological detecting, remote sensing, and depth tracking due to their small sizes, sensitive properties of their spectral fingerprints, and flexible positional modulation in the microenvironment. Lanthanide-based luminescent materials that possess long excited-state lifetime, narrow emission bandwidth, and upconversion behaviors are promising as gain mediums for novel microlasers. In addition, lanthanide-based microlasers could be generated under natural ambient conditions with pumped or continuous light sources, which significantly promotes the practical applications of microlasers. Recent progress in the design, synthesis, and biomedical applications of lanthanide-based microlasers has been outlined in this review. Lanthanide ions doped and upconverted lanthanide-based microlasers are highlighted, which exhibit advantageous structures, miniaturized dimensions, and high lasing performance. The applications of lanthanide-based microlasers are further discussed, the upconverted microlasers show great advantages for biological applications owing to their tunable excitation and emission characteristics and excellent environmental stability. Moreover, perspectives and challenges in the field of lanthanide-based microlasers are presented.

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镧系微激光器:合成、结构和生物医学应用
激光的大尺寸限制了其在密闭空间的应用,如生物传感和活体脑组织成像。在这方面,微米级激光器已经得到了发展。由于其小尺寸、光谱指纹的敏感特性和微环境中灵活的位置调制,它们在生物检测、遥感和深度跟踪方面表现出巨大的潜力。镧系发光材料具有长激发态寿命、窄发射带宽和上转换特性,有望成为新型微激光器的增益介质。此外,在自然环境条件下,利用泵浦或连续光源可以产生基于镧系元素的微激光器,这极大地促进了微激光器的实际应用。本文综述了镧系微激光器的设计、合成和生物医学应用方面的最新进展。镧系离子掺杂和上转换镧系微激光器具有优越的结构、小型化的尺寸和高的激光性能。进一步讨论了镧系微激光器的应用,上转换微激光器具有可调谐的激发和发射特性以及优异的环境稳定性,在生物领域具有很大的应用优势。展望了镧系微激光器的发展前景和面临的挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Nano Research
Nano Research 化学-材料科学:综合
CiteScore
14.30
自引率
11.10%
发文量
2574
审稿时长
1.7 months
期刊介绍: Nano Research is a peer-reviewed, international and interdisciplinary research journal that focuses on all aspects of nanoscience and nanotechnology. It solicits submissions in various topical areas, from basic aspects of nanoscale materials to practical applications. The journal publishes articles on synthesis, characterization, and manipulation of nanomaterials; nanoscale physics, electrical transport, and quantum physics; scanning probe microscopy and spectroscopy; nanofluidics; nanosensors; nanoelectronics and molecular electronics; nano-optics, nano-optoelectronics, and nano-photonics; nanomagnetics; nanobiotechnology and nanomedicine; and nanoscale modeling and simulations. Nano Research offers readers a combination of authoritative and comprehensive Reviews, original cutting-edge research in Communication and Full Paper formats. The journal also prioritizes rapid review to ensure prompt publication.
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