2024-07-17
姓名 |
北原晶子 |
性 別 |
女 |
民 族 |
漢 |
政治面貌 |
農工黨 黨員 |
相
片 |
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籍貫 |
四川安岳 |
出生年月 |
1988.10 |
參加工作時間 |
2012.10 |
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最高學歷(學位) |
博士研究生 |
現(xiàn)行政職務及任職時間 |
無 |
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擅長領域 |
水處理 |
聯(lián)系方式 (辦公電話,、郵箱) |
13143887831 |
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學歷學位教育情況 |
起止年月 |
畢業(yè)院校 |
所學專業(yè) |
學制(年) |
學歷(學位) |
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2007.09-2011.06 |
中國地質大學(武漢) |
環(huán)境工程(地學基礎) |
全日制四年 |
本科 |
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2011.09-2012.08 |
香港理工大學 |
環(huán)境管理與工程 |
全日制一年 |
碩士研究生 |
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2013.08-2016.10 |
香港理工大學 |
香港理工大學 |
全日制三年 |
博士研究生 |
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主要工作經(jīng)歷 |
自何年何月 |
至何年何月 |
在何地,、何單位任何職 |
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2012.10 |
2013.08 |
中國香港,,香港理工大學,,研究員助理(Research Assistant) |
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2016.11 |
2017.05 |
中國香港,香港理工大學,,副研究員(Research Associate) |
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2017.06 |
2018.04 |
中國香港,,香港高等教育科技學院,研究主任(Research Officer) |
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2018.04 |
2018.08 |
德國伍珀塔爾,,伍珀塔爾大學,,博士后 |
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2018.09 |
至今 |
中國廣東佛山,佛山科學技術學院,,專任教師 |
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一,、教學工作情況 |
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課程類別 |
何年何月至 何年何月 |
講授課程名稱 |
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專 業(yè) 基 礎 課 |
2019.09-至今 |
環(huán)境化學 |
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2020.09-至今 |
現(xiàn)代測試技術實驗 |
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2021.02-至今 |
有機化學1A |
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2021.02-至今 |
有機化學實驗1B |
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二、業(yè)績成果情況 |
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(一)SCI,、 EI ,、 ISTP、人大復印資料索引論文 |
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序號 |
題 目 |
作者 名次 |
發(fā)表 年月 |
刊物名稱(刊號) |
刊物主辦單位 |
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1 |
Nitrogen of EDDS enhanced removal of potentially toxic elements and attenuated their oxidative stress in a phytoextraction process |
1 |
2021 |
Environ. Pollut. |
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2 |
(Im)mobilization and speciation of lead under dynamic redox conditions in a contaminated soil amended with pine sawdust biochar. |
1 |
2020 |
Environ. Int. |
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3 |
Facile modification of graphene oxide and its application for the aqueous uranyl ion sequestration: Insights on the mechanism |
8(共同通訊) |
2020 |
Chemosphere |
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4 |
Optimizing extraction procedures for better removal of potentially toxic elements during EDTA-assisted soil washing |
2(共同一作) |
2020 |
J. Soil Sediment. |
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5 |
Interactions of food waste compost with metals and metal-chelant complexes during soil remediation |
1 |
2018 |
J. Clean. Prod. |
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6 |
Chelant-enhanced washing of CCA-contaminated soil: Coupled with selective dissolution or soil stabilization. |
1 |
2018 |
Sci. Total Environ. |
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7 |
Combined application of EDDS and EDTA for removal of potentially toxic elements under multiple soil washing schemes |
1 |
2018 |
Chemosphere |
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8 |
Fate of arsenic before and after chemical-enhanced washing of an arsenic-containing soil in Hong Kong. |
1 |
2017 |
Sci. Total Environ. |
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9 |
Magnetic bimetallic Fe, Ce-embedded N-enriched porous biochar for peroxymonosulfate activation in metronidazole degradation: Applications, mechanism insight and toxicity evaluation |
10 |
2022 |
Chem. Eng. J. |
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10 |
Phytoremediation of potentially toxic elements (PTEs) contaminated soils using alfalfa (Medicago sativa L.): A comprehensive review. |
2 |
2022 |
Chemosphere |
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11 |
U(VI) adsorption by green and facilely modified Ficus microcarpa aerial roots: Behavior and mechanism investigation. |
4 |
2022 |
Sci. Total Environ. |
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12 |
Microbial metabolic limitation of rhizosphere under heavy metal stress: Evidence from soil ecoenzymatic stoichiometry. |
7 |
2022 |
Environ. Pollut. |
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13 |
Environmental and health risk assessment of potentially toxic trace elements in soils near uranium (U) mines: A global meta-analysis. |
3 |
2021 |
Sci. Total Environ. |
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14 |
Improvement of alfalfa resistance against Cd stress through rhizobia and arbuscular mycorrhiza fungi co-inoculation in Cd-contaminated soil. |
3 |
2021 |
Sci. Total Environ. |
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15 |
New insights into ball milling effects on MgAl-LDHs exfoliation on biochar support: A case study for cadmium adsorption. |
8 |
2021 |
J. Hazard. Mater. |
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16 |
Particulate plastics-plant interaction in soil and its implications: A review. |
5 |
2021 |
Sci. Total Environ. |
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17 |
Survival strategies and dominant phylotypes of maize-rhizosphere microorganisms under metal(loid)s contamination. |
6 |
2021 |
Sci. Total Environ. |
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18 |
Escalating health risk of thallium and arsenic from farmland contamination fueled by cement-making activities: A hidden but significant source. |
6 |
2021 |
Sci. Total Environ. |
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19 |
Multifunctional applications of biochar beyond carbon storage. |
3 |
2021 |
Int. Mater. Rev. |
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20 |
Cadmium isotopic fractionation in lead-zinc smelting process and signatures in fluvial sediments. |
4 |
2021 |
J. Hazard. Mater. |
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21 |
Effects of thallium exposure on intestinal microbial community and organ functions in zebrafish (Danio rerio). |
5 |
2021 |
Elementa: Science of the Anthropocene |
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22 |
Lignin valorization by bacterial genus Pseudomonas: State-of-the-art review and prospects |
3 |
2021 |
Bioresour. Technol. |
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23 |
Emergent thallium exposure from uranium mill tailings. |
4 |
2021 |
J. Hazard. Mater. |
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24 |
Emerging risks of toxic metal(loid)s in soil-vegetables influenced by steel-making activities and isotopic source apportionment. |
6 |
2021 |
Environ. Int. |
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25 |
Interactions between methanotrophs and ammonia oxidizers modulate the response of in situ methane emissions to simulated climate change and its legacy in an acidic soil. |
9 |
2021 |
Sci. Total Environ. |
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26 |
Highly efficient removal of thallium in wastewater by MnFe2O4-biochar composite |
5 |
2020 |
J. Hazard. Mater. |
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27 |
Microbial insights into the biogeochemical features of thallium occurrence: A case study from polluted river sediments.
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5 |
2020 |
Sci. Total Environ. |
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28 |
Legacy of multiple heavy metal(loid)s contamination and ecological risks in farmland soils from a historical artisanal zinc smelting area. |
5 |
2020 |
Sci. Total Environ. |
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29 |
Impact of biochar on mobilization, methylation, and ethylation of mercury under dynamic redox conditions in a contaminated floodplain soil |
3 |
2019 |
Environ. Int. |
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30 |
Novel ternary BiOI/g-C3N4/CeO2 catalysts for enhanced photocatalytic degradation of tetracycline under visible-light radiation via double charge transfer process. |
6 |
2019 |
J. Alloys Compd. |
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31 |
A combination of ferric nitrate/EDDS-enhanced washing and sludge-derived biochar stabilization of metal-contaminated soils |
2 |
2018 |
Sci. Total Environ. |
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32 |
Sorption, mobility, and bioavailability of PBDEs in agricultural soils: Roles of coexisting heavy metals, natural organic matter, and fertilizers. |
2 |
2018 |
Sci. Total Environ. |
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33 |
Arsenic-containing soil from geogenic source in Hong Kong: Leaching characteristics and stabilization/solidification |
2 |
2018 |
Chemosphere |
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34 |
Speciation, mobilization, and bioaccessibility of arsenic in geogenic soil profile from Hong Kong |
4 |
2018 |
Environ. Pollut. |
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35 |
Pine sawdust biomass and biochars at different pyrolysis temperatures change soil redox processes. |
4 |
2018 |
Sci. Total Environ. |
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36 |
Enhancement of UV-assisted TiO2 degradation of ibuprofen using Fenton hybrid process at circumneutral pH. |
3 |
2018 |
Chin. J. Catal. |
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37 |
Effects of low-alkalinity binders on stabilization/solidification of geogenic As-containing soils: Spectroscopic investigation and leaching tests. |
5 |
2018 |
Sci. Total Environ. |
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(二)獲現(xiàn)職稱以來主要科研情況 |
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項目名稱(項目編號) |
本人 排名 |
項目 經(jīng)費(萬元) |
項目進展情況 |
項目來源 |
下達單位,、時間 |
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氧化還原變動下污泥基生物炭中重金屬穩(wěn)定性及有效磷釋放機制(42007142) |
1 |
24 |
在研 |
國家自然科學基金青年基金 |
2021.01-2023.12 |
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施用復合肥對鐵錳改性生物炭吸附固定土壤中的砷的影響及機制研究(2019A1515110927) |
1 |
10 |
在研 |
廣東省基礎與應用基礎研究基金聯(lián)合基金 |
2020.01-2022.12 |
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《佛山市禪城區(qū)CC-A-03-02-02街坊(通濟大院周邊地塊)地塊開發(fā)細則》環(huán)境影響篇章 |
1 |
2 |
在研 |
橫向課題 |
2021.11-2022.11 |
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《佛山市禪城區(qū)CC-A-02-02-01街坊(永安醫(yī)院)地塊開發(fā)細則》環(huán)境影響篇章合同 |
1 |
1.8 |
在研 |
橫向課題 |
2021.12-2022.11 |