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Dive into the research topics where Qifa Zhou is active.

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Featured researches published by Qifa Zhou.


IEEE Transactions on Ultrasonics Ferroelectrics and Frequency Control | 2006

Development of a 35-MHz piezo-composite ultrasound array for medical imaging

Jonathan M. Cannata; Jay A. Williams; Qifa Zhou; Timothy A. Ritter; K. Kirk Shung

This paper discusses the development of a 64-element 35-MHz composite ultrasonic array. This array was designed primarily for ocular imaging applications, and features 2-2 composite elements mechanically diced out of a fine-grain high-density Navy Type VI ceramic. Array elements were spaced at a 50-micron pitch, interconnected via a custom flexible circuit and matched to the 50-ohm system electronics via a 75-ohm transmission line coaxial cable. Elevation focusing was achieved using a cylindrically shaped epoxy lens. One functional 64-element array was fabricated and tested. Bandwidths averaging 55%, 23-dB insertion loss, and crosstalk less than -24 dB were measured. An image of a tungsten wire target phantom was acquired using a synthetic aperture reconstruction algorithm. The results from this imaging test demonstrate resolution exceeding 50 /spl mu/m axially and 100 /spl mu/m laterally.


Nature Medicine | 2012

Simultaneous functional photoacoustic and ultrasonic endoscopy of internal organs in vivo

Joon-Mo Yang; Christopher Favazza; Ruimin Chen; Junjie Yao; Xin Cai; Konstantin Maslov; Qifa Zhou; K. Kirk Shung; Lihong V. Wang

At present, clinicians routinely apply ultrasound endoscopy in a variety of interventional procedures that provide treatment solutions for diseased organs. Ultrasound endoscopy not only produces high-resolution images, but also is safe for clinical use and broadly applicable. However, for soft tissue imaging, its mechanical wave–based image contrast fundamentally limits its ability to provide physiologically specific functional information. By contrast, photoacoustic endoscopy possesses a unique combination of functional optical contrast and high spatial resolution at clinically relevant depths, ideal for imaging soft tissues. With these attributes, photoacoustic endoscopy can overcome the current limitations of ultrasound endoscopy. Moreover, the benefits of photoacoustic imaging do not come at the expense of existing ultrasound functions; photoacoustic endoscopy systems are inherently compatible with ultrasound imaging, thereby enabling multimodality imaging with complementary contrast. Here we present simultaneous photoacoustic and ultrasonic dual-mode endoscopy and show its ability to image internal organs in vivo, thus illustrating its potential clinical application.


Optics Express | 2010

Photoacoustic ophthalmoscopy for in vivo retinal imaging

Shuliang Jiao; Minshan Jiang; Jianming Hu; Amani A. Fawzi; Qifa Zhou; K. Kirk Shung; Carmen A. Puliafito; Hao F. Zhang

We have developed a non-invasive photoacoustic ophthalmoscopy (PAOM) for in vivo retinal imaging. PAOM detects the photoacoustic signal induced by pulsed laser light shined onto the retina. By using a stationary ultrasonic transducer in contact with the eyelids and scanning only the laser light across the retina, PAOM provides volumetric imaging of the retinal micro-vasculature and retinal pigment epithelium at a high speed. For B-scan frames containing 256 A-lines, the current PAOM has a frame rate of 93 Hz, which is comparable with state-of-the-art commercial spectral-domain optical coherence tomography (SD-OCT). By integrating PAOM with SD-OCT, we further achieved OCT-guided PAOM, which can provide multi-modal retinal imaging simultaneously. The capabilities of this novel technology were demonstrated by imaging both the microanatomy and microvasculature of the rat retina in vivo.


IEEE Transactions on Ultrasonics Ferroelectrics and Frequency Control | 2007

PMN-PT single crystal, high-frequency ultrasonic needle transducers for pulsed-wave Doppler application

Qifa Zhou; Xiaochen Xu; E.L. Gottlieb; Lei Sun; Jonathan M. Cannata; Hossein Ameri; Mark S. Humayun; Pengdi Han; S.K. Shung

High-frequency needle ultrasound transducers with an aperture size of 0.4 mm were fabricated using lead magnesium niobate-lead titanate (PMN-33%PT) as the active piezoelectric material. The active element was bonded to a conductive silver particle matching layer and a conductive epoxy backing through direct contact curing. An outer matching layer of parylene was formed by vapor deposition. The active element was housed within a polyimide tube and a 20-gauge needle housing. The magnitude and phase of the electrical impedance of the transducer were 47 Omega and -38deg, respectively. The measured center frequency and -6 dB fractional bandwidth of the PMN-PT needle transducer were 44 MHz and 45%, respectively. The two-way insertion loss was approximately 15 dB. In vivo high-frequency, pulsed-wave Doppler patterns of blood flow in the posterior portion and in vitro ultrasonic backscatter microscope (UBM) images of the rabbit eye were obtained with the 44-MHz needle transducer


Optics Letters | 2010

In vivo label-free photoacoustic microscopy of cell nuclei by excitation of DNA and RNA.

Da-Kang Yao; Konstantin Maslov; Kirk Shung; Qifa Zhou; Lihong V. Wang

Imaging of cell nuclei plays a critical role in cancer diagnosis and prognosis. To image noninvasively cell nuclei in vivo without staining, we developed UV photoacoustic microscopy (UV-PAM), in which 266 nm wavelength UV light excites unlabeled DNA and RNA in cell nuclei to produce photoacoustic waves. We applied UV-PAM to ex vivo imaging of cell nuclei in a mouse lip and a mouse small intestine and to in vivo imaging of the cell nuclei in the mouse skin. The UV-PAM images of unstained cell nuclei match the optical micrographs of the histologically stained cell nuclei. Given intrinsic optical contrast and high spatial resolution, in vivo label-free UV-PAM has potential for unique biological and clinical application.


Applied Physics Letters | 2004

Nanowire transistors with ferroelectric gate dielectrics: Enhanced performance and memory effects

Bo Lei; Chao Li; Daihua Zhang; Qifa Zhou; K. Kirk Shung; Chongwu Zhou

Integration of ferroelectric materials into nanoscale field-effect transistors offers enormous promise for superior transistor performance and also intriguing memory effects. In this study, we have incorporated lead zirconate titanate (PZT) into In2O3 nanowire transistors to replace the commonly used SiO2 as the gate dielectric. These transistors exhibited substantially enhanced performance as a result of the high dielectric constant of PZT, as revealed by a 30-fold increase in the transconductance and a 10-fold reduction in the subthreshold swing when compared to similar SiO2-gated devices. Furthermore, memory effects were observed with our devices, as characterized by a counter-clockwise loop in current-versus-gate-bias curves that can be attributed to the switchable remnant polarization of PZT. Our method can be easily generalized to other nanomaterials systems and may prove to be a viable way to obtain nanoscale memories.


Applied Physics Letters | 2007

Self-focused high frequency ultrasonic transducers based on ZnO piezoelectric films

Qifa Zhou; C.C. Sharp; Jonathan M. Cannata; K. Kirk Shung; Guo-Hua Feng; Eun Sok Kim

A micromachined self-focusing high frequency ultrasonic transducer was fabricated with a 13μm thick ZnO film deposited on a silicon substrate by sputtering. X-ray diffraction shows that the film has a high (002) orientation. The element aperture size of the transducer was 2.5mm, and the fundamental resonant frequency was designed to be over 200MHz with approximately 28% bandwidth through only one matching layer. Experimental results show that this type of focused high frequency ultrasound device may have potential for cellular microstructure imaging and skin cancer detection.


Scientific Reports | 2015

High-speed Intravascular Photoacoustic Imaging of Lipid-laden Atherosclerotic Plaque Enabled by a 2-kHz Barium Nitrite Raman Laser

Pu Wang; Teng Ma; Mikhail N. Slipchenko; Shanshan Liang; Jie Hui; K. Kirk Shung; Sukesh Roy; Michael Sturek; Qifa Zhou; Zhongping Chen; Ji-Xin Cheng

Lipid deposition inside the arterial wall is a key indicator of plaque vulnerability. An intravascular photoacoustic (IVPA) catheter is considered a promising device for quantifying the amount of lipid inside the arterial wall. Thus far, IVPA systems suffered from slow imaging speed (~50 s per frame) due to the lack of a suitable laser source for high-speed excitation of molecular overtone vibrations. Here, we report an improvement in IVPA imaging speed by two orders of magnitude, to 1.0 s per frame, enabled by a custom-built, 2-kHz master oscillator power amplifier (MOPA)-pumped, barium nitrite [Ba(NO3)2] Raman laser. This advancement narrows the gap in translating the IVPA technology to the clinical setting.


Biomedical Optics Express | 2011

Integrated optical coherence tomography, ultrasound and photoacoustic imaging for ovarian tissue characterization

Yi Yang; Xiang Li; Tianheng Wang; Patrick D. Kumavor; Andres Aguirre; Kirk Shung; Qifa Zhou; Melinda Sanders; Molly Brewer; Quing Zhu

Ovarian cancer has the lowest survival rate of the gynecologic cancers because it is predominantly diagnosed in Stages III or IV due to the lack of reliable symptoms, as well as the lack of efficacious screening techniques. Detection before the malignancy spreads or at the early stage would greatly improve the survival and benefit patient health. In this report, we present an integrated optical coherence tomography (OCT), ultrasound (US) and photoacoustic imaging (PAI) prototype endoscopy system for ovarian tissue characterization. The overall diameter of the prototype endoscope is 5 mm which is suitable for insertion through a standard 5-12.5mm endoscopic laparoscopic port during minimally invasive surgery. It consists of a ball-lensed OCT sample arm probe, a multimode fiber having the output end polished at 45 degree angle so as to deliver the light perpendicularly for PAI, and a high frequency ultrasound transducer with 35MHz center frequency. System characterizations of OCT, US and PAI are presented. In addition, results obtained from ex vivo porcine and human ovarian tissues are presented. The optical absorption contrast provided by PAI, the high resolution subsurface morphology provided by OCT, and the deeper tissue structure imaged by US demonstrate the synergy of the combined endoscopy and the superior performance of this hybrid device over each modality alone in ovarian tissue characterization.


Journal of Biomedical Optics | 2012

Phase-resolved acoustic radiation force optical coherence elastography.

Wenjuan Qi; Ruimin Chen; Li-Dek Chou; Gangjun Liu; Jun Zhang; Qifa Zhou; Zhongping Chen

Abstract. Many diseases involve changes in the biomechanical properties of tissue, and there is a close correlation between tissue elasticity and pathology. We report on the development of a phase-resolved acoustic radiation force optical coherence elastography method (ARF-OCE) to evaluate the elastic properties of tissue. This method utilizes chirped acoustic radiation force to produce excitation along the sample’s axial direction, and it uses phase-resolved optical coherence tomography (OCT) to measure the vibration of the sample. Under 500-Hz square wave modulated ARF signal excitation, phase change maps of tissue mimicking phantoms are generated by the ARF-OCE method, and the resulting Young’s modulus ratio is correlated with a standard compression test. The results verify that this technique could efficiently measure sample elastic properties accurately and quantitatively. Furthermore, a three-dimensional ARF-OCE image of the human atherosclerotic coronary artery is obtained. The result indicates that our dynamic phase-resolved ARF-OCE method can delineate tissues with different mechanical properties.

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K. Kirk Shung

University of Southern California

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Ruimin Chen

University of Southern California

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Teng Ma

University of Southern California

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Zhongping Chen

University of California

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Xiang Li

University of Southern California

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Lihong V. Wang

California Institute of Technology

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K. K. Shung

University of Southern California

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Changhong Hu

University of Southern California

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Jonathan M. Cannata

University of Southern California

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Jiawen Li

University of California

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