導(dǎo)師科研 情況簡(jiǎn)介
| 學(xué)術(shù)方向: 金屬材料功能化應(yīng)用;鈦基高熵合金設(shè)計(jì)、連接及分子動(dòng)力學(xué)模擬。 科研能力: 主要研究方向?yàn)榻饘俨牧瞎δ芑瘧?yīng)用;鈦基高熵合金設(shè)計(jì)、連接及分子動(dòng)力學(xué)模擬。目前共發(fā)表研究論文13篇。其中以第一作者發(fā)表論文7篇,包括:國(guó)際能源領(lǐng)域頂尖期刊Nano Energy、材料界面領(lǐng)域國(guó)際知名期刊ACS Applied Materials & Interfaces、自然指數(shù)期刊Journal of Physical Chemistry Letters?;?/span>Google學(xué)術(shù)查詢(xún),被引用次數(shù)為247次(單篇被引用次數(shù)大于80次的論文為2篇)。以非第一作者發(fā)表論文6篇(包含1篇共同一作),被引用次數(shù)為71次。此外,于全國(guó)催化學(xué)術(shù)會(huì)議、中國(guó)顆粒學(xué)會(huì)第十一屆學(xué)術(shù)年會(huì)獲優(yōu)秀墻報(bào)獎(jiǎng)。 科研項(xiàng)目: (1) 《中國(guó)-烏克蘭材料連接與先進(jìn)制造“一帶一路”聯(lián)合實(shí)驗(yàn)室建設(shè)與聯(lián)合研究》國(guó)家重點(diǎn)研發(fā)計(jì)劃子任務(wù)《大型鈦合金結(jié)構(gòu)焊接制造形性一體化基礎(chǔ)理論》,80萬(wàn)元。 (2) 《中國(guó)-烏克蘭材料連接與先進(jìn)制造“一帶一路”聯(lián)合實(shí)驗(yàn)室》聯(lián)合實(shí)驗(yàn)室專(zhuān)項(xiàng)《廢棄焊料的非金屬摻雜鈦基合金薄膜修飾及功能化應(yīng)用》,20萬(wàn)元。 (3) 《面向智能焊接的多場(chǎng)耦合物理模型構(gòu)建與關(guān)鍵技術(shù)》先導(dǎo)專(zhuān)項(xiàng)《TIG、PTA及其激光復(fù)合點(diǎn)焊過(guò)程多物理場(chǎng)(熱場(chǎng)、流場(chǎng)、電磁場(chǎng))數(shù)值模擬研究》,10萬(wàn)元。 科研成果(近五年): (1) Qin, B., Peng, F.*, et al. Understanding of nitrogen fixation electro catalyzed by molybdenum-iron carbide through the experiment and theory. Nano Energy 2020, 68, 104374. (Q1, IF = 17.881) (2) Qin, B., Peng, F.*, et al. Efficient electrochemical reduction of CO2 into CO promoted by sulfur vacancies. Nano Energy 2019, 60, 43-51. (Q1, IF = 17.881) (3) Qin, B., Peng, F.*, et al. Formation of Lattice-Dislocated Zinc Oxide via Anodic Corrosion for Electrocatalytic CO2 Reduction to Syngas with a Potential Dependent CO:H2 Ratio. ACS Appl. Mater. Inter. 2020, 12, 30466-30473. (Q1, IF = 9.229) (4) Qin, B., Peng, F.*, et al. Electrochemical Reduction of CO2 into Tunable Syngas Production by Regulating the Crystal Facets of Earth-Abundant Zn Catalyst. ACS Appl. Mater. Inter. 2018, 10, 20530-20539. (Q1, IF = 9.229) (5) Qin, B., Peng, F.*, et al. Mechanistic Insights into the Electrochemical Reduction of CO2 and N2 on the Regulation of a Boron Nitride Defect-Derived Two-Dimensional Catalyst using Density Functional Theory Calculations. J. Phys. Chem. Lett., 2021, 12, 7151-7158. (Q1, IF = 6.475) (6) Qin, B., Peng, F.*, et al. Effect of the surface roughness of copper substrate on three-dimensional tin electrode for electrochemical reduction of CO2 into HCOOH. J. CO2 Util. 2017, 21, 219-223. (Q3, IF = 7.132) (7) Qin, B., Peng, F.*, et al. Mechanistic Insights into the Electrochemical Reduction of CO2 on Cyclo[18]carbon using Density Functional Theory Calculations. ChemElectroChem 2020, 7, 1838-1842. (Q3, IF = 4.590) (8) Cai, X.#; Qin, B.#; Peng, F.*, et al. Chlorine-Promoted Nitrogen and Sulfur Co-Doped Biocarbon Catalyst for Electrochemical Carbon Dioxide Reduction. ChemElectroChem 2020, 7, 320-327. (Q3, IF = 4.590, 共同一作) (9) Huang, J.; Cao, Y.*; Qin, B.; Peng, F.*, et al. Highly efficient and acid-corrosion resistant nitrogen doped magnetic carbon nanotubes for the hexavalent chromium removal with subsequent reutilization. Chem. Eng. J. 2019, 361, 547-558. (Q1, IF = 13.273) (10)Zhu, W.; Zhao, K.; Liu, S.; Liu, M.; Peng, F.; An, P.; Qin, B.; Zhou, H.; Li, H.; He, Z.* Low-overpotential selective reduction of CO2 to ethanol on electrodeposited CuxAuy nanowire arrays. J. Energy Chem. 2019, 37, 176-182. (Q2, IF = 9.676)
歡迎具有材料、化學(xué)、物理背景的同學(xué)報(bào)考。 |