• 제목/요약/키워드: Ion sensor

검색결과 339건 처리시간 0.028초

Design and construction of a new ultraviolet sensor using CsI deposition in the ionization chamber

  • Souri, R.;Negarestani, A.;Souri, S.;Farzan, M.;Mahani, M.
    • Nuclear Engineering and Technology
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    • 제50권5호
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    • pp.751-757
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    • 2018
  • In this article, a UV sensor that is an appropriate tool for fire detection has been designed and constructed. The structure of this UV sensor is an air-filled single-wire detector that is able to operate under normal air condition. A reflective CsI photocathode is installed at the end of the sensor chamber to generate photoelectrons in the ion chamber. An electric current is produced by accelerating photoelectrons to the anode in the electric field. The detector is able to measure the intensity of the incident UV rays whenever the current is sufficiently high. Therefore, the sensitivity coefficient of this sensor is found to be $7.67{\times}10^{-6}V/photons/sec$.

Suggestion for deep learning approach to solve the interference effect of ammonium ion on potassium ion-selective electrode

  • Kim, Min-Yeong;Heo, Jae-Yeong;Oh, Eun Hun;Lee, Joo-Yul;Lee, Kyu Hwan
    • 한국표면공학회지
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    • 제55권3호
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    • pp.156-163
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    • 2022
  • An ammonium ion with a size and charge similar to that of potassium can bind to valinomycin, which is used as an ion carrier for potassium, and cause a meaningful interference effect on the detection of potassium ions. Currently, there are few ion sensors that correct the interference effect of ammonium ions, and there are few studies that specifically suggest the mechanism of the interference effect. By fabricating a SPCE-based potassium ion-selective electrode, the electromotive force was measured in the concentration range of potassium in the nutrient solution, and the linear range was measured to be 10-5 to 10-2 M, and the detection limit was 10-5.19 M. And the interference phenomenon of the potassium sensor was investigated in the concentration range of ammonium ions present in the nutrient solution. Therefore, a data-based analysis strategy using deep learning was presented as a method to minimize the interference effect.

표면음향파 화학센서를 이용한 수용액 중 시안화이온의 선택적인 고감도 검출 (Highly sensitive and selective detection of cyanide in aqueous solutions using a surface acoustic wave chemical sensor)

  • 이수석
    • 한국음향학회지
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    • 제35권6호
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    • pp.473-479
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    • 2016
  • 본 연구는 센서 표면에 고정된 티오에스터 분자와 금 나노입자를 이용하여 수용액 중의 시안화이온(cyanide)을 선택적이고, 고민감도로 검출할 수 있는 200 MHz 표면음향파(Surface Acoustic Wave, SAW) 센서의 개발에 관한 것이다. SAW 센서표면에 형성된 티오에스터 단분자막은 시안화이온의 친핵성 첨가반응에 의해 가수분해되어 티올(thiol)이 만들어지고, 티올 분자는 다시 금 나노입자와 반응에 의해 티올-금 나노입자 복합체를 형성한다. 이후 신호증폭을 위해, gold(III) chloride trihydrate와 hydroxylamine hydrochloride 조합에 의한 금 나노입자의 사이즈 확대반응을 수행하였다. SAW 센서는 수용액 중에서 시안화이온에 대한 검출 능력이 17.7 uM이었으며, 공진주파수 변화량은 시안화이온의 농도가 커지면서 포화되는 현상을 보여주었다. 한편, 제작된 SAW 센서는 시안화이온 이외의 플루오라이드(fluoride), 아세테이트(acetate), 그리고 설페이트(sulfate) 이온 등의 다른 음이온에는 전혀 반응성이 없었으며, 다른 음이온에 의한 간섭현상도 나타나지 않았다. 끝으로 모든 실험은 재현성 있는 실험 결과를 얻기 위해서 자체 제작한 유체제어 모듈과 센서를 이용하여 진행하였다.

Micro-volume형 일회용 pH 센서 제작 (Fabrication of Disposable pH Sensor with Micro-volume Type)

  • 정호;김홍락;김영덕;정우철;김동수;남효덕
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2003년도 하계학술대회 논문집 Vol.4 No.2
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    • pp.950-952
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    • 2003
  • This paper have been studied fabrication and characteristics of disposable pH sensor using MEMS technology. The sensor has two open-well structure, the container for the internal electrolyte and electrode were formed by anisotropically etching a silicon substrate. unlike currently used KCI saturated solution, the structure was introduced hydrogel which take an advantage of miniaturization, bulk product, a low price. PU and CA/TP used to measurement ion detection, one is reference membrane and the other is pH. fabricated sensor is encapsulated entirely with epoxy, finally sensor was estimated various ion sorts and pH ranges.

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초고주파수 진동 감지를 위한 이온 질량기반 진동센서 (Ion-Based Micro Vibration Sensor for Ultra-High Frequency Vibration Detection)

  • 김광호;서영호
    • 대한기계학회논문집A
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    • 제32권9호
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    • pp.728-732
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    • 2008
  • This paper presents ion-based micro vibration sensor for the ultra-high frequency vibration detection. Presented sensor uses the motion of anion and cation in an electrolyte. Electrolyte vibration sensors have the high shock survival characteristics and a simple read-out circuit because of the small mass and own charges of ions. Presented sensor measures the induced electric potential by the mechanical-electrical coupling. It consist of electrolyte chamber and detection electrode. Electrolyte chamber was fabricated by PDMS molding. Detection electrode was made of gold evaporation on pyrex glass. Size of electrolyte chamber was designed as $600{\times}600{\times}100um$. Detection electrode had 200nm-thick and 42um-gap. In the experimental study, 5.8M sodium Chloride (NaCl) solution was used as electrolyte in 36nl-chamber. Mechanical vibration was measured from 2kHz to 4MHz.

대용량 리튬 이온 배터리용 Active 방전시험기의 개발 (Development of active discharge tester for high capacity lithium-ion battery)

  • 박준형;가니 도가라 유나나;박찬원
    • 산업기술연구
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    • 제40권1호
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    • pp.13-18
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    • 2020
  • Lithium-ion batteries have a small volume, light weight and high energy density, maximizing the utilization of mobile devices. It is widely used for various purposes such as electric bicycles and scooters (e-Mobility), mass energy storage (ESS), and electric and hybrid vehicles. To date, lithium-ion batteries have grown to focus on increasing energy density and reducing production costs in line with the required capacity. However, the research and development level of lithium-ion batteries seems to have reached the limit in terms of energy density. In addition, the charging time is an important factor for using lithium-ion batteries. Therefore, it was urgent to develop a high-speed charger to shorten the charging time. In this thesis, a discharger was fabricated to evaluate the capacity and characteristics of Li-ion battery pack which can be used for e-mobility. To achieve this, a smart discharger is designed with a combination of active load, current sensor, and temperature sensor. To carry out this thesis, an active load switching using sensor control circuit, signal processing circuit, and FET was designed and manufactured as hardware with the characteristics of active discharger. And as software for controlling the hardware of the active discharger, a Raspberry Pi control device and a touch screen program were designed. The developed discharger is designed to change the 600W capacity battery in the form of active load.

Novel Silver(I) Ion Selective PVC Membrane Electrode Based on the Schiff Base (N2E,N2'E)-N2,N2'-Bis(Thiophen-2-ylmethylene)-1,1'-Binaphthyl-2,2'-Diamine

  • Jeong, Eunseon;Ahmed, Mohammad Shamsuddin;Jeong, Hae-Sang;Lee, Eun-Hee;Jeon, Seung-Won
    • Bulletin of the Korean Chemical Society
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    • 제32권3호
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    • pp.800-804
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    • 2011
  • A potentiometric sensor based on the Schiff base $(N^2E,N^{2'}E)-N^2,N^{2'}$-bis(thiophen-2-ylmethylene)-1,1'-binaphthl-2,2'-diamine has been synthesized and explored as an ionophore PVC-based membrane sensor selective for the silver ($Ag^+$) ion. Potentiometric investigations indicate a high affinity of this receptor for the silver ion. Seven membranes have been fabricated with different compositions, with the best performance shown by the membrane with an ionophore composition (w/w) of: 1.0 mg, PVC: 33.0 mg, DOA: 66.0 mg in 1.0 mL THF. The sensor worked well within a wide concentration range of $1.0{\times}10^{-2}$ to $1.0{\times}10^{-7}$ M, at pH 5, at room temperature (slope 57.4 mV/dec.), and with a rapid response time of 9 s; the sensor also showed good selectivity towards the silver ion over a huge number of interfering cations, with the highest selectivity coefficient for $Hg^{2+}$ at -3.7. Thus far, the best lower detection limit was $4.0{\times}10^{-8}$ M.

N-Carbamoylglycine 및 N-Salicylideneaniline과 Metal ions들에 의한 발광 세기의 변화 (Luminescence Intensity Change Using N-Carbamoylglycine, N-Salicylideneaniline and Metal ions)

  • 김지웅;김영해
    • 대한화학회지
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    • 제46권6호
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    • pp.502-508
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    • 2002
  • 본 실험은 N-Carbamoylglycine의 농도 결정에 PET sensor를 응용한 것이다.N-Carbamoylglycine이 금속 이온에 리간드로 작용하면서 착물을 만들고 있는 fluorophore의 luminescence intensity를 변화시킬수 있고 이를 통해 농도결정에 이용할 수 있다. 사용한 금속이 온은 $Ni^{2+}$, $Cu^{2+}$ 그리고 $Zn^{2+}$이며 비교대상으로 아세트산을 사용하여 선택성을 확인하였다. $Ni^{2+}$ 이온은 음이온 리간드에 의해서 eT mechanism 변화를 보여주었으며 , $Cu^{2+}$이온은 아세트산과 N-Carbamoylglycine을 구별하는 선택성을 가지고 있으며, $Zn^{2+}$이온은 매우 예민한 luminscence intensity 변화를 일으키는 것으로 나타났다.

Optical Probe for Determination of Chromium(III) Ion in Aqueous Solution Based on Sol-Gel-Entrapped Lucigenin Chemiluminescence

  • Li, Ming;Kwak, Jun-Hee;Kim, Chang-Jin;Lee, Sang-Hak
    • 한국환경과학회:학술대회논문집
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    • 한국환경과학회 2003년도 International Symposium on Clean Environment
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    • pp.103-108
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    • 2003
  • A method to determine chromium(III) ion in aqueous solution by chemiluminescence method using a lucigenin entrapped silica sol-gel film has been studied. An optical probe for chromium(III) ion has been prepared by entrapping lucigenin into silica sol-gel film coated on a glass support by dip coating. The chromium(III) optical sensor is based on the catalytic effect of chromium(IIII) ion on the reaction between lucigenin and hydrogen peroxide in basic solutions. The effects of Nafion, DMF and Triton X-100 were investigated to find the optimum condition to minimize cracking and leaching from the probe. The effects of pH and concentrations of lucigenin and hydrogen peroxide on the chemiluminescence intensity were investigated. The chemiluminescence intensity was increased linearly with increasing chromium(III) concentration from $2.5{\times}10^{-4}$M to $8.0{\times}10^{-7}$M and the detection limit was $4.0{\times}10^{-7}$M.

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Development of a New Copper(II) Ion-selective Poly(vinyl chloride) Membrane Electrode Based on 2-Mercaptobenzoxazole

  • Akhond, Morteza;Ghaedi, Mehrorang;Tashkhourian, Javad
    • Bulletin of the Korean Chemical Society
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    • 제26권6호
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    • pp.882-886
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    • 2005
  • Copper(II) ion-selective PVC membrane electrode based on 2-mercaptobenzoxazole as a new ionophore and o-nitrophenyl octyl ether (o-NPOE) as plasticizer is proposed. This electrode revealed good selectivity for $Cu^{2+}$ over a wide variety of other metal ions. Effects of experimental parameters such as membrane composition, nature and amount of plasticizer, and concentration of internal solution on the potential response of $Cu^{2+}$ sensor were investigated. The electrode exhibits good response for $Cu^{2+}$ in a wide linear range of 5.0 ${\times}$ 10−.6-1.6 ${\times}$ $10^{-2}$ mol/L with a slope of 29.2 ${\pm}$ 2.0 mV/decade. The response time of the sensor is less than 10 s, and the detection limit is 2.0 ${\times}$ $10^{-6}$ mol/L. The electrode response was stable in pH range of 4-6. The lifetime of the electrode was about 2 months. The electrode revealed comparatively good selectivities with respect to many alkali, alkaline earth, and transition metal ions.