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McLeod E, Dincer TU, Veli M, Ertas YN, Nguyen C, Luo W, Greenbaum A, Feizi A, Ozcan A. High-throughput and label-free single nanoparticle sizing based on time-resolved on-chip microscopy. ACS NANO 2015; 9:3265-73. [PMID: 25688665 DOI: 10.1021/acsnano.5b00388] [Citation(s) in RCA: 47] [Impact Index Per Article: 5.2] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 05/26/2023]
Abstract
Sizing individual nanoparticles and dispersions of nanoparticles provides invaluable information in applications such as nanomaterial synthesis, air and water quality monitoring, virology, and medical diagnostics. Several conventional nanoparticle sizing approaches exist; however, there remains a lack of high-throughput approaches that are suitable for low-resource and field settings, i.e., methods that are cost-effective, portable, and can measure widely varying particle sizes and concentrations. Here we fill this gap using an unconventional approach that combines holographic on-chip microscopy with vapor-condensed nanolens self-assembly inside a cost-effective hand-held device. By using this approach and capturing time-resolved in situ images of the particles, we optimize the nanolens formation process, resulting in significant signal enhancement for the label-free detection and sizing of individual deeply subwavelength particles (smaller than λ/10) over a 30 mm(2) sample field-of-view, with an accuracy of ±11 nm. These time-resolved measurements are significantly more reliable than a single measurement at a given time, which was previously used only for nanoparticle detection without sizing. We experimentally demonstrate the sizing of individual nanoparticles as well as viruses, monodisperse samples, and complex polydisperse mixtures, where the sample concentrations can span ∼5 orders-of-magnitude and particle sizes can range from 40 nm to millimeter-scale. We believe that this high-throughput and label-free nanoparticle sizing platform, together with its cost-effective and hand-held interface, will make highly advanced nanoscopic measurements readily accessible to researchers in developing countries and even to citizen-scientists, and might especially be valuable for environmental and biomedical applications as well as for higher education and training programs.
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Affiliation(s)
- Euan McLeod
- †Electrical Engineering Department, University of California, Los Angeles, California 90095, United States
- ‡Bioengineering Department, University of California, Los Angeles, California 90095, United States
| | - T Umut Dincer
- †Electrical Engineering Department, University of California, Los Angeles, California 90095, United States
- ‡Bioengineering Department, University of California, Los Angeles, California 90095, United States
| | - Muhammed Veli
- †Electrical Engineering Department, University of California, Los Angeles, California 90095, United States
- ‡Bioengineering Department, University of California, Los Angeles, California 90095, United States
| | - Yavuz N Ertas
- ‡Bioengineering Department, University of California, Los Angeles, California 90095, United States
| | | | - Wei Luo
- †Electrical Engineering Department, University of California, Los Angeles, California 90095, United States
- ‡Bioengineering Department, University of California, Los Angeles, California 90095, United States
| | - Alon Greenbaum
- †Electrical Engineering Department, University of California, Los Angeles, California 90095, United States
- ‡Bioengineering Department, University of California, Los Angeles, California 90095, United States
| | - Alborz Feizi
- ‡Bioengineering Department, University of California, Los Angeles, California 90095, United States
| | - Aydogan Ozcan
- †Electrical Engineering Department, University of California, Los Angeles, California 90095, United States
- ‡Bioengineering Department, University of California, Los Angeles, California 90095, United States
- ⊥California NanoSystems Institute, University of California, Los Angeles, California 90095, United States
- ∥Department of Surgery, David Geffen School of Medicine, University of California, Los Angeles, California 90095, United States
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Abstract
In this Review, we provide an overview of flatbed scanner based biomedical imaging and sensing techniques. The extremely large imaging field-of-view (e.g., ~600-700 cm(2)) of these devices coupled with their cost-effectiveness provide unique opportunities for digital imaging of samples that are too large for regular optical microscopes, and for collection of large amounts of statistical data in various automated imaging or sensing tasks. Here we give a short introduction to the basic features of flatbed scanners also highlighting the key parameters for designing scientific experiments using these devices, followed by a discussion of some of the significant examples, where scanner-based systems were constructed to conduct various biomedical imaging and/or sensing experiments. Along with mobile phones and other emerging consumer electronics devices, flatbed scanners and their use in advanced imaging and sensing experiments might help us transform current practices of medicine, engineering and sciences through democratization of measurement science and empowerment of citizen scientists, science educators and researchers in resource limited settings.
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Affiliation(s)
- Zoltán Göröcs
- Department of Electrical Engineering, University of California Los Angeles (UCLA Electrical Engineering and Bioengineering Departments), CA 90095, USA.
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Kiss MZ, Nagy BJ, Lakatos P, Göröcs Z, Tőkés S, Wittner B, Orzó L. Special multicolor illumination and numerical tilt correction in volumetric digital holographic microscopy. OPTICS EXPRESS 2014; 22:7559-73. [PMID: 24718130 DOI: 10.1364/oe.22.007559] [Citation(s) in RCA: 5] [Impact Index Per Article: 0.5] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 05/12/2023]
Abstract
We introduce a color imaging method in our digital holographic microscope system (DHM). This DHM can create color images of freely floating, or moving objects inside a large volume by simultaneously capturing three holograms using three different illumination wavelengths. In this DHM a new light source assembly is applied, where we use single mode fibers according to the corresponding wavelengths that are tightly and randomly arranged into a small array in a single FC/PC connector. This design has significant advantages over the earlier approaches, where all the used illuminations are coupled in the same fiber. It avoids the coupling losses and provides a cost effective, compact solution for multicolor coherent illumination. We explain how to determine and correct the different fiber end positions caused tilt aberration during the hologram reconstruction process. To demonstrate the performance of the device, color hologram reconstructions are presented that can achieve at least 1 µm lateral resolution.
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Sencan I, Coskun AF, Sikora U, Ozcan A. Spectral demultiplexing in holographic and fluorescent on-chip microscopy. Sci Rep 2014; 4:3760. [PMID: 24441627 PMCID: PMC3895906 DOI: 10.1038/srep03760] [Citation(s) in RCA: 19] [Impact Index Per Article: 1.9] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 10/22/2013] [Accepted: 12/23/2013] [Indexed: 12/22/2022] Open
Abstract
Lensfree on-chip imaging and sensing platforms provide compact and cost-effective designs for various telemedicine and lab-on-a-chip applications. In this work, we demonstrate computational solutions for some of the challenges associated with (i) the use of broadband, partially-coherent illumination sources for on-chip holographic imaging, and (ii) multicolor detection for lensfree fluorescent on-chip microscopy. Specifically, we introduce spectral demultiplexing approaches that aim to digitally narrow the spectral content of broadband illumination sources (such as wide-band light emitting diodes or even sunlight) to improve spatial resolution in holographic on-chip microscopy. We also demonstrate the application of such spectral demultiplexing approaches for wide-field imaging of multicolor fluorescent objects on a chip. These computational approaches can be used to replace e.g., thin-film interference filters, gratings or other optical components used for spectral multiplexing/demultiplexing, which can form a desirable solution for cost-effective and compact wide-field microscopy and sensing needs on a chip.
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Affiliation(s)
- Ikbal Sencan
- Electrical Engineering Department, University of California Los Angeles, Los Angeles, California, United States of America
| | - Ahmet F Coskun
- Electrical Engineering Department, University of California Los Angeles, Los Angeles, California, United States of America
| | - Uzair Sikora
- Electrical Engineering Department, University of California Los Angeles, Los Angeles, California, United States of America
| | - Aydogan Ozcan
- 1] Electrical Engineering Department, University of California Los Angeles, Los Angeles, California, United States of America [2] Bioengineering Department, University of California Los Angeles, Los Angeles, California, United States of America [3] California NanoSystems Institute, University of California Los Angeles, Los Angeles, California, United States of America
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