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metadata
license: other
task_categories:
  - tabular-regression
  - tabular-classification
tags:
  - materials-science
  - chemistry
  - foundry-ml
  - scientific-data
size_categories:
  - 1K<n<10K

The joint automated repository for various integrated simulations (JARVIS) for data-driven materials design

Dataset containing calculated exfoliation energies for 636 materials

Dataset Information

  • Source: Foundry-ML
  • DOI: 10.18126/yx4h-ny59
  • Year: 2020
  • Authors: Choudhary, Kamal, Garrity, Kevin F., Reid, Andrew C. E., DeCost, Brian, Biacchi, Adam J., Walker, Angela R. Hight, Trautt, Zachary, Hattrick-Simpers, Jason, Kusne, A. Gilad, Centrone, Andrea, Davydov, Albert, Jiang, Jie, Pachter, Ruth, Cheon, Gowoon, Reed, Evan, Agrawal, Ankit, Qian, Xiaofeng, Sharma, Vinit, Zhuang, Houlong, Kalinin, Sergei V., Sumpter, Bobby G., Pilania, Ghanshyam, Acar, Pinar, Mandal, Subhasish, Haule, Kristjan, Vanderbilt, David, Rabe, Karin, Tavazza, Francesca
  • Data Type: tabular

Fields

Field Role Description Units
formula input Material composition
target target Exfoliation energy eV/atom

Splits

  • train: train

Usage

With Foundry-ML (recommended for materials science workflows)

from foundry import Foundry

f = Foundry()
dataset = f.get_dataset("10.18126/yx4h-ny59")
X, y = dataset.get_as_dict()['train']

With HuggingFace Datasets

from datasets import load_dataset

dataset = load_dataset("Dataset_exfoliationE")

Citation

@misc{https://doi.org/10.18126/yx4h-ny59
doi = {10.18126/yx4h-ny59}
url = {https://doi.org/10.18126/yx4h-ny59}
author = {Choudhary, Kamal and Garrity, Kevin F. and Reid, Andrew C. E. and DeCost, Brian and Biacchi, Adam J. and Walker, Angela R. Hight and Trautt, Zachary and Hattrick-Simpers, Jason and Kusne, A. Gilad and Centrone, Andrea and Davydov, Albert and Jiang, Jie and Pachter, Ruth and Cheon, Gowoon and Reed, Evan and Agrawal, Ankit and Qian, Xiaofeng and Sharma, Vinit and Zhuang, Houlong and Kalinin, Sergei V. and Sumpter, Bobby G. and Pilania, Ghanshyam and Acar, Pinar and Mandal, Subhasish and Haule, Kristjan and Vanderbilt, David and Rabe, Karin and Tavazza, Francesca}
title = {The joint automated repository for various integrated simulations (JARVIS) for data-driven materials design}
keywords = {machine learning, foundry}
publisher = {Materials Data Facility}
year = {root=2020}}

License

other


This dataset was exported from Foundry-ML, a platform for materials science datasets.