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電池原位紅外附件

電池原位紅外附件

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電化學(xué)原位紅外光譜分析是紅外分析技術(shù)的一個(gè)重要分支,能夠定性分析電催化(如CO2電還原等)反應(yīng)、各種類型電池(如鋰離子、鋰硫電池等)充放電過程中電極表面的產(chǎn)物或中間產(chǎn)物隨時(shí)間(電位)不斷變化的趨勢,是研究電化學(xué)反應(yīng)機(jī)理以及電化學(xué)反應(yīng)動(dòng)力學(xué)的重要手段之一。

構(gòu)造原理

(1)兩電極體系,專為電池體系設(shè)計(jì)。

(2)電化學(xué)反應(yīng)池氣密性良好,可通入反應(yīng)氣體。

(3)金剛石晶體,適用性廣。

屏幕截圖 2023-08-01 164839.jpg屏幕截圖 2023-08-01 165014.jpg

圖2:基本原理示意圖

 

附件組成

(1)紅外光譜儀主機(jī)適配底板,適配主流紅外光譜儀。

(2)光路系統(tǒng)。

(3)PEEK材質(zhì)氣密性電化學(xué)池。

(4)O型圈密封件。

 

主要特點(diǎn)

(1)優(yōu)化的光路系統(tǒng),光通量大。

(2)電化學(xué)池密封性能好,可通入反應(yīng)氣體。

(3)金剛石晶體光通量大。

(4)獨(dú)特的電極,電解液信號采集調(diào)節(jié)技術(shù)。

(5)可實(shí)現(xiàn)電化學(xué)紅外質(zhì)譜三聯(lián)用。

(6)金剛石晶體板和電化學(xué)池拆卸方便,可方便在手套箱中組裝電池。

(7)提供現(xiàn)場技術(shù)服務(wù)。

 

主要技術(shù)參數(shù)

1.光譜范圍:250/525-4000 cm-1

2.晶體種類:金剛石晶體

3.電化學(xué)池:PEEK材質(zhì),兩電極體系,氣密性池體,可方便在手套箱中裝卸電池,設(shè)有進(jìn)氣口和出氣口,可實(shí)現(xiàn)各類電池充放電過程中紅外光譜的采集。

4.溫控電化學(xué)池,溫控范圍:RT-100℃,溫控精度0.1℃。

5.電極與金剛石晶體距離調(diào)節(jié)系統(tǒng),帶刻度微調(diào)功能,重現(xiàn)性好,以實(shí)現(xiàn)觀測電解液溶劑化或電極表面物種變化。

6.電化學(xué)池可實(shí)現(xiàn)電化學(xué)質(zhì)譜儀與紅外三聯(lián)用,提供多聯(lián)用技術(shù)方案。

7.反射次數(shù):單次反射。

8.反射類型:外反射。

9.光路反射系統(tǒng)適配主流品牌紅外光譜儀,提供光譜儀適配底板,光路系統(tǒng)方便安放或取出光譜儀樣品倉。




應(yīng)用案例


紅外電池中圖.jpg

鋰離子電池 ?Chem. Mater. 2020, 32, 8, 3405–3413



圖片3.jpg

鋰離子電池 ACS Energy Lett. 2020, 5, 1022?1031



圖片2.jpg

鋅離子電池 Adv. Funct. Mater. 2020, 2003890



圖片1.jpg

鋰離子電池  Joule 2022, 6, 399–417


部分客戶論文發(fā)表清單:

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  16. Zhongbin Zhuang*, et al. A highly-active, stable and low-cost platinum-free anode catalyst based on RuNi for hydroxide exchange membrane fuel cells. Nat. Commun. 2020, 11, 5651 

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  19. Song Chen, Jintao Zhang*, et al. Regulation of Lamellar Structure of Vanadium Oxide via Polyaniline Intercalation for High-Performance Aqueous Zinc-Ion Battery. Adv. Funct. Mater. 2020, 30, 2003890 

  20. Yanrong Xue, Zhongbin Zhuang*, et al. Sulfate-Functionalized RuFeOx as Highly Efficient Oxygen Evolution Reaction Electrocatalyst in Acid. Adv. Funct. Mater. 2021, 31, 2101405

  21. Hong Guo*, et al. Cooperative catalytic interface accelerates redox kinetics of sulfur species for high-performance Li-S batteries. Energy Storage Materials. 2021, 40, 139-149

  22. Bin Zhang*, et al. Promoting nitric oxide electroreduction to ammonia over electron-rich Cu modulated by Ru doping. SCIENCE CHINA Chemistry. 2021, 64, 1493–1497

  23. Yang Peng*, et al. Geometric Modulation of Local CO Flux in Ag@Cu2O Nanoreactors for Steering the CO2RR pathway toward High-Efficacy Methane Production. Adv. Mater. 2021, 33, 2101741

  24. Yonggang Wang*, et al. Molecular Tailoring of n/p-type Phenothiazine Organic Scaffold for Zinc Batteries. Angew. Chem. Int. Ed. 2021, 60, 20826-20832 

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  37. Tieliang Li, Yifu Yu, Bin Zhang*, et al. Sulfate-Enabled Nitrate Synthesis from Nitrogen Electrooxidation on Rhodium Electrocatalyst. Angew. Chem. Int. Ed. 2022, e202204541 

  38. Yanbo Li, Bin Zhang, Yifu Yu*, et al. Electrocatalytic Reduction of Low-Concentration Nitric Oxide into Ammonia over Ru Nanosheets. ACS Energy Letters 2022, 7, 1187-1194 

  39. Yanmei Huang, Yifu Yu, Bin Zhang*, et al. Direct Electrosynthesis of Urea from Carbon Dioxide and Nitric Oxide. ACS Energy Letters 2022, 7, 284-291

  40. Wenfu Xie, Hao Li, Min Wei*, et al. NiSn Atomic Pair on Integrated Electrode for Synergistic Electrocatalytic CO2 Reduction. Angew. Chem. Int. Ed. 2021, 60, 7382–7388

  41. Rui Sui, Jiajing Pei, Zhongbin Zhuang*, et al. Engineering Ag?Nx Single-Atom Sites on Porous Concave N-Doped Carbon for Boosting COElectroreduction. ACS Appl. Mater. Interfaces 2021, 13, 17736-17744 

  42. Tiliang Li, Yuting Wang, Yifu Yu*, Bin Zhang*, et al. Ru-Doped Pd Nanoparticles for Nitrogen Electrooxidation to Nitrate. ACS Catal. 2021, 11, 14032-14037

  43. Bin Zhang*, et al. Promoting selective electroreduction of nitrates to ammonia over electron-deficient Co modulated by rectifying Schottky contacts. Science China Chemistry 2020, 63, 1469-1476

  44. Jiangwei Shi, Bin Zhang*, et al. Promoting nitric oxide electroreduction to ammonia over electron-rich Cu modulated by Ru doping. Science China Chemistry 2021, 64, 1493-1497 

  45. Jintao Zhang* et al. Atomic Bridging Structure of Nickel-Nitrogen-Carbon for Highly Efficient Electrocatalytic Reduction of CO2. Angew. Chem.Int. Ed. 2022, 61, e202113918

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  47. Bin Zhang* et al. Phenanthrenequinone-like moiety functionalized carbon for electrocatalytic acidic oxygen evolution. Chem. 2022, 8, 1415-1426

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  49. Nan Wang, Yonggang Wang*, et al. Zinc-organic Battery with a Wide Operation-temperature Window from -70 to 150 oC. Angew. Chem. Int. Ed. 2020,59,14577-14583

  50. Nannan Meng, Yifu Yu, Bin Zhang*, et al. Efficient Electrosynthesis of Syngas with Tunable CO/H2 Ratios over ZnxCd1-xS-Amine Inorganic-Organic Hybrids. Angew. Chem. Int. Ed. 2019, 58, 18908–18912