Selective cobalt and nickel separation by bioacid-mediated electrowinning

钴 镍 沉积(地质) 化学 分析化学(期刊) 电积 数据表 电流(流体) 表(数据库) 选择性 阴极 原始数据 计算机科学 原材料 材料科学 阳极 分离(统计) 度量(数据仓库) 无机化学 干扰(通信) 算法 匹配(统计) 峰值电流
作者
Li, Tianchen,Zhang, Chi,Zhou, Hewen,Lin, Dian-Zhao,Chen, Jiahang,Mu, Yongbiao,Tran, Jasmine,Liu, Andong,Jayarapu, Krish,Li, Zhengyuan,Musgrave, Charles,Zhang, Jihan,Zhang, Lingyu,Qi, Zhiyao,Mathur, Anmol,Du, Hongang,Prakash, Prabhat,Goddard, William,Liu, Yayuan
出处
期刊:CERN European Organization for Nuclear Research - Zenodo [European Organization for Nuclear Research]
标识
DOI:10.5281/zenodo.17946161
摘要

This is code and the supplementary archive for the paper titled Selective cobalt and nickel separation by bioacid-mediated electrowinning. Supplementary Data folder contains the following datasheet that was used for model training and retrieving important fragments of the bioacids. raw_data.csv: raw data of the datasheet, containing five columns: acid: name of the bioacids. SMILES: SMILES of the bioacids. concentration: the concentration of the bioacids (Unit: mM). potential: the potential to retrieve the Co or Ni deposition current (Unit: V). selectivity: the selectivity for Co-Ni separation. Calculated by dividing the Co deposition current by the Ni deposition current under the selected potential. dataset_w_ECFPs: dataset that contains the extended-connectivity fingerprints (ECFPs) of the bioacids. Can be generated by feature_engineering.py. dataset_w_WECFPs: dataset that contains the weighted extended-connectivity fingerprints (WECFPs) of the bioacids. To take the concentration of the bioacids into account, we used normalized concentration as the weight of the ECFPs to generate the weighted ECFPs (denoted by WECFPs). Each bit of ECFPs was multiplied by the weight to get the WECFPs. For example, if an experiment was performed with 10 mM bioacid, the weight would be 0.1667, and all bits of the ECFPs in this data would be multiplied by 0.1667 to get the WECFPs; on the other hand, if an experiment was performed with 60 mM bioacid, the weight would be 1, and all bits of the ECFPs in this data would be multiplied by 1. A table for concentration-weight conversion is as follows for reference: concentration (mM) 10 20 30 40 50 60 weight 0.1667 0.3333 0.5 0.66687 0.8883 1 model_training_interpretation.py Example code that use the whole dataset to train a random forest (RF) regression model and use SHAP to interpret the model (output the important substructure of bioacids). feature_engineering.py Example code that convert the bioacids to weighted ECFP. for ML model training. fragment_retrieve.py Example code that retrieve the substructure of bioacids for the important bits.
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