Literature DB >> 22954148

Imaging depths of near-infrared quantum dots in first and second optical windows.

Nayoun Won1, Sanghwa Jeong, Kangwook Kim, Jungheon Kwag, Joonhyuck Park, Sang Geol Kim, Sungjee Kim.   

Abstract

Potential advantages of quantum dot (QD) imaging in the second optical window (SOW) at 1,000 to 1,400 nm over the first optical window (FOW) at 700 to 900 nm have attracted much interest. QDs that emit at 800 nm (800QDs) and QDs that emit at 1,300 nm (1,300QDs) are used to investigate the imaging depths at the FOW and SOW. QD images in biologic tissues are processed binarized via global thresholding method, and the imaging depths are determined using the criteria of contrast to noise ratio and relative apparent size. Owing to the reduced scattering in the SOW, imaging depth in skin can be extended by approximately three times for 1,300QD/SOW over 800QD/FOW. In liver, excitation of 1,300QD/SOW can be shifted to longer wavelengths; thus, the imaging depth can be extended by 1.4 times. Effects of quantum yield (QY), concentration, incidence angle, polarization, and fluence rate F on imaging depth are comprehensively studied. Under F approved by the Food and Drug Administration, 1,300QDs with 50% QY can reach imaging depths of 29.7 mm in liver and 17.5 mm in skin. A time-gated excitation using 1,000 times higher F pulses can obtain the imaging depth of ≈ 5 cm. To validate our estimates, in vivo whole-body imaging experiments are performed using small-animal models.

Mesh:

Year:  2012        PMID: 22954148

Source DB:  PubMed          Journal:  Mol Imaging        ISSN: 1535-3508            Impact factor:   4.488


  17 in total

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2.  Multispectral measurement of contrast in tissue-mimicking phantoms in near-infrared spectral range of 650 to 1600 nm.

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3.  Progress Towards Applications of Carbon Nanotube Photoluminescence.

Authors:  Prakrit V Jena; Thomas V Galassi; Daniel Roxbury; Daniel A Heller
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4.  Penetration depth of photons in biological tissues from hyperspectral imaging in shortwave infrared in transmission and reflection geometries.

Authors:  Hairong Zhang; Daniel Salo; David M Kim; Sergey Komarov; Yuan-Chuan Tai; Mikhail Y Berezin
Journal:  J Biomed Opt       Date:  2016-12-01       Impact factor: 3.170

5.  Shortwave Infrared Imaging with J-Aggregates Stabilized in Hollow Mesoporous Silica Nanoparticles.

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6.  In vivo photoacoustic imaging of chorioretinal oxygen gradients.

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7.  In vivo NIR-II structured-illumination light-sheet microscopy.

Authors:  Feifei Wang; Zhuoran Ma; Yeteng Zhong; Felix Salazar; Chun Xu; Fuqiang Ren; Liangqiong Qu; Anna M Wu; Hongjie Dai
Journal:  Proc Natl Acad Sci U S A       Date:  2021-02-09       Impact factor: 11.205

Review 8.  Nanotechnologies for noninvasive measurement of drug release.

Authors:  Thomas Moore; Hongyu Chen; Rachel Morrison; Fenglin Wang; Jeffrey N Anker; Frank Alexis
Journal:  Mol Pharm       Date:  2013-11-26       Impact factor: 4.939

Review 9.  Quantum Dot-Dye Conjugates for Biosensing, Imaging, and Therapy.

Authors:  Sungwook Jung; Xiaoyuan Chen
Journal:  Adv Healthc Mater       Date:  2018-06-03       Impact factor: 9.933

10.  Polymeric Nanocarriers with Luminescent Colloidal Nanoplatelets as Hydrophilic and Non-Toxic Two-Photon Bioimaging Agents.

Authors:  Katarzyna Celina Nawrot; Jan Kazimierz Zareba; Monika Toporkiewicz; Grzegorz Chodaczek; Dominika Wawrzynczyk; Julita Kulbacka; Urszula Bazylinska; Marcin Nyk
Journal:  Int J Nanomedicine       Date:  2021-05-27
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