• 제목/요약/키워드: Porous Membrane

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THE CURRENT STATUS OF BIOMEDICAL ENGINEERING IN THE USA

  • Webster, John G.
    • 대한의용생체공학회:학술대회논문집
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    • 대한의용생체공학회 1992년도 춘계학술대회
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    • pp.27-47
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    • 1992
  • Engineers have developed new instruments that aid in diagnosis and therapy Ultrasonic imaging has provided a nondamaging method of imaging internal organs. A complex transducer emits ultrasonic waves at many angles and reconstructs a map of internal anatomy and also velocities of blood in vessels. Fast computed tomography permits reconstruction of the 3-dimensional anatomy and perfusion of the heart at 20-Hz rates. Positron emission tomography uses certain isotopes that produce positrons that react with electrons to simultaneously emit two gamma rays in opposite directions. It locates the region of origin by using a ring of discrete scintillation detectors, each in electronic coincidence with an opposing detector. In magnetic resonance imaging, the patient is placed in a very strong magnetic field. The precessing of the hydrogen atoms is perturbed by an interrogating field to yield two-dimensional images of soft tissue having exceptional clarity. As an alternative to radiology image processing, film archiving, and retrieval, picture archiving and communication systems (PACS) are being implemented. Images from computed radiography, magnetic resonance imaging (MRI), nuclear medicine, and ultrasound are digitized, transmitted, and stored in computers for retrieval at distributed work stations. In electrical impedance tomography, electrodes are placed around the thorax. 50-kHz current is injected between two electrodes and voltages are measured on all other electrodes. A computer processes the data to yield an image of the resistivity of a 2-dimensional slice of the thorax. During fetal monitoring, a corkscrew electrode is screwed into the fetal scalp to measure the fetal electrocardiogram. Correlations with uterine contractions yield information on the status of the fetus during delivery To measure cardiac output by thermodilution, cold saline is injected into the right atrium. A thermistor in the right pulmonary artery yields temperature measurements, from which we can calculate cardiac output. In impedance cardiography, we measure the changes in electrical impedance as the heart ejects blood into the arteries. Motion artifacts are large, so signal averaging is useful during monitoring. An intraarterial blood gas monitoring system permits monitoring in real time. Light is sent down optical fibers inserted into the radial artery, where it is absorbed by dyes, which reemit the light at a different wavelength. The emitted light travels up optical fibers where an external instrument determines O2, CO2, and pH. Therapeutic devices include the electrosurgical unit. A high-frequency electric arc is drawn between the knife and the tissue. The arc cuts and the heat coagulates, thus preventing blood loss. Hyperthermia has demonstrated antitumor effects in patients in whom all conventional modes of therapy have failed. Methods of raising tumor temperature include focused ultrasound, radio-frequency power through needles, or microwaves. When the heart stops pumping, we use the defibrillator to restore normal pumping. A brief, high-current pulse through the heart synchronizes all cardiac fibers to restore normal rhythm. When the cardiac rhythm is too slow, we implant the cardiac pacemaker. An electrode within the heart stimulates the cardiac muscle to contract at the normal rate. When the cardiac valves are narrowed or leak, we implant an artificial valve. Silicone rubber and Teflon are used for biocompatibility. Artificial hearts powered by pneumatic hoses have been implanted in humans. However, the quality of life gradually degrades, and death ensues. When kidney stones develop, lithotripsy is used. A spark creates a pressure wave, which is focused on the stone and fragments it. The pieces pass out normally. When kidneys fail, the blood is cleansed during hemodialysis. Urea passes through a porous membrane to a dialysate bath to lower its concentration in the blood. The blind are able to read by scanning the Optacon with their fingertips. A camera scans letters and converts them to an array of vibrating pins. The deaf are able to hear using a cochlear implant. A microphone detects sound and divides it into frequency bands. 22 electrodes within the cochlea stimulate the acoustic the acoustic nerve to provide sound patterns. For those who have lost muscle function in the limbs, researchers are implanting electrodes to stimulate the muscle. Sensors in the legs and arms feed back signals to a computer that coordinates the stimulators to provide limb motion. For those with high spinal cord injury, a puff and sip switch can control a computer and permit the disabled person operate the computer and communicate with the outside world.

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P(VdF-co-HFP)/PVP를 이용한 EDLC용 고분자 겔 전해질의 제조 (Preparation of Polymer Gel Electrolyte for EDLCs using P(VdF-co-HFP)/PVP)

  • 정현철;장인영;강안수
    • 공업화학
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    • 제17권3호
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    • pp.243-249
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    • 2006
  • 전기이중층 커패시터 및 리튬이온 2차전지의 compact화 하기 위하여 격리막과 전해질의 기능을 동시에 갖는 겔 전해질에 대한 연구가 광범위하게 진행되어 왔다. 본 연구는 고분자 겔 전해질에 다량의 기공을 형성하여 전해질의 함침성을 높이기 위해 물리적 특성이 우수한 고분자 지지체 P(VdF-co-HFP)/PVP에 개공제 PVP를 이용하였으며, 가소제 PC와 EC, 그리고 지지전해질 $TEABF_4$를 이용하여 고분자 겔 전해질을 제조하였다. 분말활성탄 BP-20과 MSP-20, 전도성 개량제 Super P 및 결합제 P(VdF-co-HFP)와 PVP를 사용한 전극과 결합하여 단위셀을 제작하였고, 고분자 겔 전해질과 단위셀의 전기화학적 특성을 고찰하였다. PVP 첨가량에 따른 고분자 겔 전해질의 이온전도도는 7 wt%일 때 가장 우수한 이온전도도를 보였으나, 단위셀을 구성하여 전기화학적 특성을 분석한 결과 AC-ESR은 3 wt%일 때 가장 우수하였다. 또한 단위셀을 구성하여 전기화학적 특성 분석 결과 PC : EC = 33 : 33 wt%일 때 가장 우수하였다. 또한 PC를 단독 사용시 보다 PC와 EC의 혼합물을 가소제로 사용하였을 때 비정전용량 등 전기화학적 특성이 높았다. 고분자 겔 전해질의 두께에 따른 이온전도도는 $20{\mu}m$일때 가장 우수한 결과를 보였으나, 단위셀을 구성하여 전기화학적 특성 분석 결과 $50{\mu}m$일 때 가장 우수한 사이클 특성을 나타내었다. 고분자 겔 전해질과 전극사이를 열 압착한 단위셀은 31.41 F/g의 높은 비정전용량과 안정한 전기화학적 특성을 나타내었다. 따라서 P(VdF-co-HFP : PVP = 20 : 3 및 PC : EC = 44 : 22 wt%로 제조된 EDLC용 고분자 겔 전해질의 최적 조성비는 23 : 66 : 11 wt%이었으며, 두께 $50{\mu}m$일 때 $3.17{\times}10^{-3}S/cm$의 이온전도도를 나타내었다. 이 때 단위셀의 전기화학적 특성은 DC-ESR $2.69{\Omega}$, 비정전용량 28 F/g 및 쿨롱 효율 100%이었다.