Lin CW, Huang S, Colangelo M, Chen C, Wong FNC, He Y, Berggren KK, Belcher AM. Surface plasmon enhanced upconversion fluorescence in short-wave infrared for in vivo imaging of ovarian cancer. ACS Nano. 2022;16(8):12930–40.
Article CAS PubMed Google Scholar
Lin W, Li J, Feng H, Qi F, Huang L. Recent advances in triplet-triplet annihilation upconversion for bioimaging and biosensing. J Anal Test. 2023. https://doi.org/10.1007/s41664-023-00264-0.
Lin Y, Yao Y, Zhang W, Fang Q, Zhang L, Zhang Y, Xu Y. Applications of upconversion nanoparticles in cellular optogenetics. Acta Biomater. 2021;135:1–12.
Article CAS PubMed Google Scholar
Wang Q, Wee ATS. Upconversion photovoltaic effect of WS2/2D perovskite heterostructures by two-photon absorption. ACS Nano. 2021;15(6):10437–43.
Article CAS PubMed Google Scholar
Li X, Wang Y, Zhang P, Ge W. Highly sensitivity, selectivity chemosensor for methyl orange using upconversion NaBiF4: Yb/Tm nanosheets. J Solid State Chem. 2021;301: 122307.
An R, Liang Y, Deng R, Lei P, and Zhang H. Hollow nanoparticles synthesized via ostwald ripening and their upconversion luminescence-mediated boltzmann thermometry over a wide temperature range. Light: Science & Applications. 2022, 11(1): 217.
Fischer S, Siefe C, Swearer DF, Mclellan CA, Alivisatos AP, Dionne JA. Bright infrared-to-ultraviolet/visible upconversion in small alkaline earth-based nanoparticles with biocompatible CaF2 shells. Angew Chem IntEd. 2020;59(48):21603–12.
Kotulska A M, Pilch-Wróbel A, Lahtinen S, Soukka T, and Bednarkiewicz A. Upconversion FRET quantitation: the role of donor photoexcitation mode and compositional architecture on the decay and intensity based responses. Light: Science & Applications. 2022, 11(1): 256.
Lin S, Abulipizi G, Li L, Zhang N, Wang J, Xu F, Wang X, Li Z. Low-dose X-ray activated self-luminous bone cement with NIR-to-NIR pseudo-upconverted persistent luminescence sensitized by Nd. J Anal Test. 2023. https://doi.org/10.1007/s41664-023-00268-w.
An Z, Li Q, Huang J, Tao L, Zhou B. Selectively manipulating interactions between lanthanide sublattices in nanostructure toward orthogonal upconversion. Nano Lett. 2023;23(13):6241–8.
Article CAS PubMed Google Scholar
Wang S, Shen B, Wei H-L, Liu Z, Chen Z, Zhang Y, Su Y, Zhang J-Z, Wang H, Su Q. Comparative investigation of the optical spectroscopic and thermal effect in Nd3+-doped nanoparticles. Nanoscale. 2019;11(21):10220–8.
Article CAS PubMed Google Scholar
Wisser MD, Fischer S, Siefe C, Alivisatos AP, Salleo A, Dionne JA. Improving quantum yield of upconverting nanoparticles in aqueous media via emission sensitization. Nano Lett. 2018;18(4):2689–95.
Article CAS PubMed Google Scholar
Chen S, Weitemier AZ, Zeng X, He L, Wang X, Tao Y, Huang AJY, Hashimotodani Y, Kano M, Iwasaki H, Parajuli LK, Okabe S, Teh DBL, All AH, Tsutsui-Kimura I, Tanaka KF, Liu X, Mchugh TJ. Near-infrared deep brain stimulation via upconversion nanoparticle-mediated optogenetics. Science. 2018;359(6376):679–84.
Article CAS PubMed Google Scholar
Xie X, Li Q, Chen H, Wang W, Wu F, Tu L, Zhang Y, Kong X, Chang Y. Manipulating the injected energy flux via host-sensitized nanostructure for improving multiphoton upconversion luminescence of Tm3+. Nano Lett. 2022;22(13):5339–47.
Article CAS PubMed Google Scholar
Xu H, Han S, Deng R, Su Q, Wei Y, Tang Y, Qin X, Liu X. Anomalous upconversion amplification induced by surface reconstruction in lanthanide sublattices. Nat Photon. 2021;15(10):732–7.
Zhuo Z, Liu Y, Liu D, Huang P, Jiang F, Chen X, Hong M. Manipulating energy transfer in lanthanide-doped single nanoparticles for highly enhanced upconverting luminescence. Chem Sci. 2017;8(7):5050–6.
Article CAS PubMed PubMed Central Google Scholar
Ding M, Dong B, Lu Y, Yang X, Yuan Y, Bai W, Wu S, Ji Z, Lu C, Zhang K, Zeng H. Energy manipulation in lanthanide-doped core-shell nanoparticles for tunable dual-mode luminescence toward advanced anti-counterfeiting. Adv Mater. 2020;32(45):2002121.
Liu Y, Zhong D, He Y, Jiang J, Xie W, Tang Z, Qiu J, Luo J, Wang X. Photoresponsive hydrogel-coated upconversion cyanobacteria nanocapsules for myocardial infarction prevention and treatment. Adv Sci. 2022;9(30):2202920.
Dong A, Ye X, Chen J, Kang Y, Gordon T, Kikkawa JM, Murray CB. A generalized ligand-exchange strategy enabling sequential surface functionalization of colloidal nanocrystals. J Am Chem Soc. 2011;133(4):998–1006.
Article CAS PubMed Google Scholar
Xie X, Gao N, Deng R, Sun Q, Xu Q-H, Liu X. Mechanistic investigation of photon upconversion in Nd3+-sensitized core–shell nanoparticles. J Am Chem Soc. 2013;135(34):12608–11.
Article CAS PubMed Google Scholar
Xie X, Li Z, Zhang Y, Guo S, Pendharkar AI, Lu M, Huang L, Huang W, Han G. Emerging ≈800 nm excited lanthanide-doped upconversion nanoparticles. Small. 2017;13(6):1602843.
Nie J, Shao Q, Yu S, Shi M, Dong Y, Jiang J. Distinct luminescent thermal behaviors of Yb3+- and Nd3+-sensitized core/shell upconversion nanocrystals. The J Phys Chem C. 2023;127(15):7552–9.
Yang L, Yu S, Yan Y, Bi S, Zhu J-J. Upconversion nanoparticle@au core-satellite assemblies for in situ amplified imaging of microrna in living cells and combined cancer phototherapy. Anal Chem. 2022;94(19):7075–83.
Article CAS PubMed Google Scholar
Hu J, Zhao B, Wen R, Zhang X, Zhang Y, Kohane DS, Liu Q. Squaraine dye-sensitized upconversion with enhanced stability and minimized aggregation-caused quenching. Nano Lett. 2023;23(11):5209–16.
Article CAS PubMed Google Scholar
Zhang X, Chen W, Xie X, Li Y, Chen D, Chao Z, Liu C, Ma H, Liu Y, Ju H. Boosting luminance energy transfer efficiency in upconversion nanoparticles with an energy-concentrating zone. Angew Chem Int Ed. 2019;58(35):12117–22.
Lei Z, Ling X, Mei Q, Fu S, Zhang J, Zhang Y. An excitation navigating energy migration of lanthanide ions in upconversion nanoparticles. Adv Mater. 2020;32(9):1906225.
Chen D, Xu M, Huang P, Ma M, Ding M, Lei L. Water detection through Nd3+-sensitized photon upconversion in core-shell nanoarchitecture. J Mater Chem C. 2017;5(22):5434–43.
Cong T, Ding Y, Xin S, Hong X, Zhang H, Liu Y. Solvent-induced luminescence variation of upconversion nanoparticles. Langmuir. 2016;32(49):13200–6.
Article CAS PubMed Google Scholar
Liu Q, Zhang Y, Peng CS, Yang T, Joubert L-M, Chu S. Single upconversion nanoparticle imaging at sub-10 W cm−2 irradiance. Nat Photon. 2018;12(9):548–53.
Liu S, Sun Y, Zhang T, Cao L, Zhong Z, Cheng H, Wang Q, Qiu Z, Zhou W, Wang X. Upconversion nanoparticles regulated drug & gas dual-effective nanoplatform for the targeting cooperated therapy of thrombus and anticoagulation. Bioactive Materials. 2022;18:91–103.
Article PubMed PubMed Central Google Scholar
Zhang Y, Wen R, Hu J, Guan D, Qiu X, Zhang Y, Kohane DS, Liu Q. Enhancement of single upconversion nanoparticle imaging by topologically segregated core-shell structure with inward energy migration. Nat Commun. 2022;13(1):5927.
Article CAS PubMed PubMed Central Google Scholar
Siefe C, Mehlenbacher RD, Peng CS, Zhang Y, Fischer S, Lay A, Mclellan CA, Alivisatos AP, Chu S, Dionne JA. Sub-20 nm core–shell–shell nanoparticles for bright upconversion and enhanced förster resonant energy transfer. J Am Chem Soc. 2019;141(42):16997–7005.
Article CAS PubMed PubMed Central Google Scholar
Zhou B, Tang B, Zhang C, Qin C, Gu Z, Ma Y, Zhai T, Yao J. Enhancing multiphoton upconversion through interfacial energy transfer in multilayered nanoparticles. Nat Commun. 2020;11(1):1174.
Article CAS PubMed PubMed Central Google Scholar
Chen XY, Zhu YL, Guo XM, Li X, Wu YQ. Energy transfer-based rare earth upconversion luminescence composite system for detection of peroxynitrite. Chin J Anal Lab. 2022;41(10):1127–34.
Wang M, Song J, Zhou F, Hoover AR, Murray C, Zhou B, Wang L, Qu J, Chen WR. Nir-triggered phototherapy and immunotherapy via an antigen-capturing nanoplatform for metastatic cancer treatment. Adv Sci. 2019;6(10):1802157.
Comments (0)