Lili Xi

3.9k total citations · 1 hit paper
76 papers, 3.3k citations indexed

About

Lili Xi is a scholar working on Materials Chemistry, Electrical and Electronic Engineering and Atomic and Molecular Physics, and Optics. According to data from OpenAlex, Lili Xi has authored 76 papers receiving a total of 3.3k indexed citations (citations by other indexed papers that have themselves been cited), including 62 papers in Materials Chemistry, 36 papers in Electrical and Electronic Engineering and 13 papers in Atomic and Molecular Physics, and Optics. Recurrent topics in Lili Xi's work include Advanced Thermoelectric Materials and Devices (54 papers), Chalcogenide Semiconductor Thin Films (24 papers) and Thermal properties of materials (15 papers). Lili Xi is often cited by papers focused on Advanced Thermoelectric Materials and Devices (54 papers), Chalcogenide Semiconductor Thin Films (24 papers) and Thermal properties of materials (15 papers). Lili Xi collaborates with scholars based in China, United States and Taiwan. Lili Xi's co-authors include Wenqing Zhang, Lidong Chen, Jiong Yang, Jihui Yang, Xun Shi, Wujie Qiu, David J. Singh, Lihua Wu, Xuezhi Ke and Ctirad Uher and has published in prestigious journals such as Proceedings of the National Academy of Sciences, Journal of the American Chemical Society and Angewandte Chemie International Edition.

In The Last Decade

Lili Xi

72 papers receiving 3.2k citations

Hit Papers

On the tuning of electrical and thermal transport in ther... 2016 2026 2019 2022 2016 100 200 300 400

Peers — A (Enhanced Table)

Peers by citation overlap · career bar shows stage (early→late) cites · hero ref

Name h Career Trend Papers Cites
Lili Xi China 28 3.0k 1.6k 593 337 310 76 3.3k
Subhajit Roychowdhury India 27 2.8k 0.9× 1.7k 1.0× 369 0.6× 404 1.2× 421 1.4× 53 3.0k
Jifeng Sun United States 23 2.3k 0.8× 834 0.5× 763 1.3× 230 0.7× 267 0.9× 54 2.7k
Chen Chen China 32 2.5k 0.8× 868 0.5× 582 1.0× 218 0.6× 473 1.5× 122 2.7k
Tyler J. Slade United States 18 1.5k 0.5× 963 0.6× 283 0.5× 205 0.6× 231 0.7× 42 1.8k
Kevin Lukas United States 14 2.2k 0.7× 1.1k 0.6× 529 0.9× 265 0.8× 495 1.6× 23 2.3k
Francesco Ricci Belgium 18 1.6k 0.5× 591 0.4× 379 0.6× 224 0.7× 212 0.7× 29 1.8k
Huaizhou Zhao China 22 1.4k 0.5× 505 0.3× 420 0.7× 157 0.5× 328 1.1× 50 1.6k
Liangwei Fu China 27 2.4k 0.8× 1.3k 0.8× 300 0.5× 141 0.4× 586 1.9× 66 2.4k
Pengfei Nan China 21 1.7k 0.6× 1.0k 0.6× 312 0.5× 185 0.5× 307 1.0× 64 2.0k
Fivos Drymiotis United States 20 1.3k 0.4× 533 0.3× 293 0.5× 148 0.4× 212 0.7× 46 1.5k

Countries citing papers authored by Lili Xi

Since Specialization
Citations

This map shows the geographic impact of Lili Xi's research. It shows the number of citations coming from papers published by authors working in each country. You can also color the map by specialization and compare the number of citations received by Lili Xi with the expected number of citations based on a country's size and research output (numbers larger than one mean the country cites Lili Xi more than expected).

Fields of papers citing papers by Lili Xi

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

This network shows the impact of papers produced by Lili Xi. Nodes represent research fields, and links connect fields that are likely to share authors. Colored nodes show fields that tend to cite the papers produced by Lili Xi. The network helps show where Lili Xi may publish in the future.

Co-authorship network of co-authors of Lili Xi

This figure shows the co-authorship network connecting the top 25 collaborators of Lili Xi. A scholar is included among the top collaborators of Lili Xi based on the total number of citations received by their joint publications. Widths of edges represent the number of papers authors have co-authored together. Node borders signify the number of papers an author published with Lili Xi. Lili Xi is excluded from the visualization to improve readability, since they are connected to all nodes in the network.

All Works

20 of 20 papers shown
2.
Chen, Qiyong, Hao Zhang, Zhiteng Wang, et al.. (2025). Simultaneous Charge Extraction Enhancement and Defect Passivation Via a Planar Conjugated Molecular Interface Enable 22.49%‐Efficient Inorganic Perovskite Solar Cells. Angewandte Chemie International Edition. 64(39). e202510925–e202510925. 1 indexed citations
3.
Huang, Xiao, et al.. (2025). Treatment of Reactive Blue Dye-Contaminated Water via Activated Carbon Adsorption and Electrochemical Degradation. Environmental Engineering Science. 42(9). 391–400.
4.
Chen, Qiyong, et al.. (2024). The A-Ni chemical bond in AIIINiSb (AIII=Sc, Y, Er) half-Heusler materials triggers the formation of anomalous vacancy defects. Materials Today Physics. 46. 101531–101531. 1 indexed citations
5.
Yang, Yuan‐Han, Yifei Lin, Jinyang Xi, et al.. (2024). HH130: a standardized database of machine learning interatomic potentials, datasets, and its applications in the thermal transport of half-Heusler thermoelectrics. Digital Discovery. 3(11). 2201–2210. 3 indexed citations
6.
Li, Rui, Shiang Zhang, Hao Zhang, et al.. (2024). Customizing Aniline‐Derived Molecular Structures to Attain beyond 22 % Efficient Inorganic Perovskite Solar Cells. Angewandte Chemie. 136(42). 18 indexed citations
7.
Feng, Jianghe, Qiyong Chen, Xiong Yang, et al.. (2024). Oriented Bi2Te3-based films enabled high performance planar thermoelectric cooling device for hot spot elimination. Nature Communications. 15(1). 9695–9695. 16 indexed citations
8.
Wang, Zhiteng, Qiyong Chen, Huidong Xie, et al.. (2024). Light‐Driven Dynamic Defect‐Passivation for Efficient Inorganic Perovskite Solar Cells. Advanced Functional Materials. 35(9). 27 indexed citations
9.
Li, Guoping, Qiyong Chen, Ning Tang, et al.. (2024). Self-trapped holes, oxygen vacancies and electrocatalytic performance of Zn-doped β-Ga2O3 microspindles. CrystEngComm. 26(28). 3833–3843. 4 indexed citations
10.
Li, Rui, Shiang Zhang, Hao Zhang, et al.. (2024). Customizing Aniline‐Derived Molecular Structures to Attain beyond 22 % Efficient Inorganic Perovskite Solar Cells. Angewandte Chemie International Edition. 63(42). e202410600–e202410600. 24 indexed citations
11.
Wang, Xiaoqiang, Qiyong Chen, Lili Xi, et al.. (2024). Achieving high carrier mobility and low lattice thermal conductivity in GeTe‐based alloys by cationic/anionic co‐doping. Rare Metals. 43(6). 2784–2795. 9 indexed citations
12.
Wang, Yumeng, Qiyong Chen, Shiqi Yang, et al.. (2024). Stabilizing Distorted Ductile Semiconductors for Excellent Ductility and Thermoelectric Performance. Advanced Functional Materials. 35(6). 8 indexed citations
13.
Jin, Zhicheng, Tingting Deng, Pengfei Qiu, et al.. (2023). Thermoelectric performance of ternary Cu-based chalcogenide Cu2TiTe3. Applied Physics Letters. 123(11). 5 indexed citations
15.
Li, Yan, Linlin Wang, Qi Liu, et al.. (2023). Band engineering enhances the electrochemical properties by constructing TiO2 NRs-MoS2 NSFs flexible electrode. Journal of Colloid and Interface Science. 650(Pt A). 892–900. 6 indexed citations
16.
Zhang, Jianxin, Zhou Zhang, Lili Xi, Jinyang Xi, & Jiong Yang. (2022). Intrinsic defects and the influences on electrical transport properties in quaternary diamond-like compounds: Cd2Cu3In3Te8 as an example. Journal of Materiomics. 8(6). 1222–1229. 6 indexed citations
17.
Li, Xin, et al.. (2021). Materials informatics platform with three dimensional structures, workflow and thermoelectric applications. Scientific Data. 8(1). 236–236. 47 indexed citations
18.
Ding, Jincheng, Changdong Liu, Lili Xi, Jinyang Xi, & Jiong Yang. (2020). Thermoelectric transport properties in chalcogenides ZnX (X=S, Se): From the role of electron-phonon couplings. Journal of Materiomics. 7(2). 310–319. 27 indexed citations
19.
Bai, Shengqiang, et al.. (2011). Realization of high thermoelectric performance in n-type partially filled skutterudites. Journal of materials research/Pratt's guide to venture capital sources. 26(15). 1745–1754. 114 indexed citations
20.
Xi, Lili, Wenqing Zhang, Lidong Chen, & Jihui Yang. (2010). Filled Skutterudites: from Single to Multiple Filling. Journal of the Korean Ceramic Society. 47(1). 54–60. 8 indexed citations

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