The Journal of Light Scattering, Volume. 35, Issue 4, 311(2023)
Gap-enhanced Raman tags (GERTs): synthesis, optical properties and applications
[1] [1] N G Khlebtsov, L Lin, B N Khlebtsov, J Ye. Gap-enhanced Raman tags: fabrication, optical properties, and theranostic applications[J]. Theranostics,2020,10(5):2067-2094.
[2] [2] L Lin, X Bi, Y Gu, F Wang, J Ye. Surface-enhanced Raman scattering nanotags for bioimaging[J]. Journal of Applied Physics,2021,129(19).
[3] [3] A Campion, P Kambhampati. Surface-enhanced Raman scattering[J]. Chemical society reviews, 1998,27(4):241-250.
[8] [8] Y Zhang, Y Gu, J He, B D Thackray, J Ye. Ultrabright gap-enhanced Raman tags for high-speed bioimaging[J]. Nature communications,2019,10(1):3905-3916.
[9] [9] Y Zhang, Y Qiu, L Lin, H Gu, Z Xiao, J Ye. Ultraphotostable mesoporous silica-coated gap-enhanced Raman tags (GERTs) for high-speed bioimaging[J]. ACS applied materials & interfaces,2017,9(4):3995-4005.
[10] [10] J Li, C He, H Qu, F Shen, J Ye. Five-dimensional unclonable anticounterfeiting orthogonal Raman labels[J]. Journal of Materials Chemistry C, 2022,10(18):7273-7282.
[11] [11] J Li, F Liu, C He, F Shen, J Ye. Orthogonal gap-enhanced Raman tags for interference-free and ultrastable surface-enhanced Raman scattering[J]. Nanophotonics,2022,11(8):1549-1560.
[12] [12] Y Gu, C He, F Liu, J Ye. Raman ink for steganography[J]. Advanced Optical Materials,2021,9(6):2002038.
[13] [13] Y Gu, C He, Y Zhang, L Lin, B D Thackray, J Ye. Gap-enhanced Raman tags for physically unclonable anticounterfeiting labels[J]. Nature communications,2020,11(1):516-528.
[14] [14] X Jiang, Z Tan, L Lin, J He, C He, B D Thackray, Y Zhang, J Ye. Surface-Enhanced Raman Nanoprobes with Embedded Standards for Quantitative Cholesterol Detection[J]. Small Methods,2018,2(11):1800182.
[15] [15] C He, X Wu, J Zhou, Y Chen, J Ye. Raman optical identification of renal cell carcinoma via machine learning[J]. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy,2021,252:119520.
[16] [16] Y Lu, L Lin, J Ye. Human metabolite detection by surface-enhanced Raman spectroscopy[J]. Materials Today Bio,2022,13:100205.
[17] [17] C He, S Zhu, X Wu, J Zhou, Y Chen, X Qian, J Ye. Accurate Tumor Subtype Detection with Raman Spectroscopy via Variational Autoencoder and Machine Learning[J]. ACS omega,2022,7(12):10458-10468.
[18] [18] W Wang, B Shi, C He, S Wu, L Zhu, J Jiang, L Wang, L Lin, J Ye, H Zhang. Euclidean distance-based Raman spectroscopy (EDRS) for the prognosis analysis of gastric cancer: A solution to tumor heterogeneity[J]. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy,2023,288:122163.
[19] [19] X Jin, B N Khlebtsov, V A Khanadeev, N G Khlebtsov, J Ye. Rational design of ultrabright SERS probes with embedded reporters for bioimaging and photothermal therapy[J]. ACS applied materials & interfaces,2017,9(36):30387-30397.
[20] [20] Y Zhang, L Lin, J Ye. A rapid and universal method for depth estimation of lesions in heterogeneous tissues via photosafe ratiometric transmission Raman spectroscopy[J]. View,2023:20230022.
[21] [21] Y Zhang, R Chen, F Liu, P Miao, L Lin, J Ye. In Vivo Surface-Enhanced Transmission Raman Spectroscopy under Maximum Permissible Exposure: Toward Photosafe Detection of Deep-Seated Tumors[J]. Small Methods,2023,7(2):2201334.
[22] [22] S Zhu, B Deng, F Liu, J Li, L Lin, J Ye. Surface-enhanced Raman scattering bioimaging with an ultrahigh signal-to-background ratio under ambient light[J]. ACS Applied Materials & Interfaces,2022,14(7):8876-8887.
[23] [23] B Deng, Y Wang, Y Wu, W Yin, J Lu, J Ye. Raman Nanotags-Guided Intraoperative Sentinel Lymph Nodes Precise Location with Minimal Invasion[J]. Advanced Science,2022,9(2):2102405.
[24] [24] Y Zhang, L Lin, J He, J Ye. Optical penetration of surface-enhanced micro-scale spatial offset Raman spectroscopy in turbid gel and biological tissue[J]. Journal of Innovative Optical Health Sciences,2021,14(04):2141001.
[25] [25] Y Gu, X Bi, J Ye. Gap-enhanced resonance Raman tags for live-cell imaging[J]. Journal of Materials Chemistry B,2020,8(31):6944-6955.
[26] [26] Z Bao, Y Zhang, Z Tan, X Yin, W Di, J Ye. Gap-enhanced Raman tags for high-contrast sentinel lymph node imaging[J]. Biomaterials,2018,163:105-115.
[27] [27] B Shi, D Li, W Yao, W Wang, J Jiang, R Wang, F Yan, H Liu, H Zhang, J Ye. Multifunctional theranostic nanoparticles for multi-modal imaging-guided CAR-T immunotherapy and chemo-photothermal combinational therapy of non-Hodgkin’s lymphoma[J]. Biomaterials Science,2022,10(10):2577-2589.
[28] [28] Z Bao, B Deng, Y Zhang, X Li, Z Tan, Z Gu, B Gu, Z Shao, W Di, J Ye. Ratiometric Raman nanotags enable intraoperative detection of metastatic sentinel lymph node[J]. Biomaterials,2021,276:121070.
[29] [29] B Shi, B Zhang, Y Zhang, Y Gu, C Zheng, J Yan, W Chen, F Yan, J Ye, H Zhang. Multifunctional gap-enhanced Raman tags for preoperative and intraoperative cancer imaging[J]. Acta Biomaterialia,2020,104:210-220.
[30] [30] Y Qiu, Y Zhang, M Li, G Chen, C Fan, K Cui, J B Wan, A Han, J Ye, Z Xiao. Intraoperative detection and eradication of residual microtumors with gap-enhanced Raman tags[J]. ACS nano,2018,12(8):7974-7985.
[31] [31] Y Zhang, Z Liu, B D Thackray, Z Bao, X Yin, F Shi, J Wu, J Ye, W Di. Intraoperative Raman-guided chemo-photothermal synergistic therapy of advanced disseminated ovarian cancers[J]. Small,2018,14(31):1801022.
[32] [32] L Lin, M Zapata, M Xiong, Z Liu, S Wang, H Xu, A G Borisov, H Gu, P Nordlander, J Aizpurua. Nanooptics of plasmonic nanomatryoshkas: shrinking the size of a core–shell junction to subnanometer[J]. Nano letters,2015,15(10):6419-6428.
[33] [33] L Lin, H Gu, J Ye. Plasmonic multi-shell nanomatryoshka particles as highly tunable SERS tags with built-in reporters[J]. Chemical Communications,2015,51(100):17740-17743.
[34] [34] M Kim, S M Ko, J M Kim, J Son, C Lee, W K Rhim, J M Nam. Dealloyed intra-nanogap particles with highly robust, quantifiable surface-enhanced Raman scattering signals for biosensing and bioimaging applications[J]. ACS Central Science,2018,4(2):277-287.
[35] [35] C Ayala-Orozco, J G Liu, M W Knight, Y Wang, J K Day, P Nordlander, N J Halas. Fluorescence enhancement of molecules inside a gold nanomatryoshka[J]. Nano letters,2014,14(5):2926-2933.
[36] [36] L Lin, Q Zhang, X Li, M Qiu, X Jiang, W Jin, H Gu, D Y Lei, J Ye. Electron transport across plasmonic molecular nanogaps interrogated with surface-enhanced Raman scattering[J]. ACS nano,2018,12(7):6492-6503.
[37] [37] J Li, B Deng, J Ye. Fluorescence-free bis (dithiolene) nickel dyes for surface-enhanced resonance Raman imaging in the second near-infrared window[J]. Biomaterials,2023:122211.
[38] [38] S Wang, Z Liu, C Bartic, H Xu, J Ye. Improving SERS uniformity by isolating hot spots in gold rod-in-shell nanoparticles[J]. Journal of Nanoparticle Research,2016,18:1-11.
[39] [39] X Jin, J He, J Ye. Nanotriangle-based gap-enhanced Raman tags for bioimaging and photothermal therapy[J]. Journal of Applied Physics,2019,125(7).
[40] [40] D D Gurav, Y A Jia, J Ye, K Qian. Design of plasmonic nanomaterials for diagnostic spectrometry[J]. Nanoscale Advances,2019,1(2):459-469.
[41] [41] Z Ye, L Lin, Z Tan, Y J Zeng, S Ruan, J Ye. Sub-100 nm multi-shell bimetallic gap-enhanced Raman tags[J]. Applied Surface Science,2019,487:1058-1067.
Get Citation
Copy Citation Text
DENG Binge, LIN Li, YE Jian. Gap-enhanced Raman tags (GERTs): synthesis, optical properties and applications[J]. The Journal of Light Scattering, 2023, 35(4): 311
Received: Sep. 22, 2023
Accepted: --
Published Online: Jul. 23, 2024
The Author Email: