代表性论文专著
主要著作:
1. 王如竹,吴静怡,代彦军等著。吸附式制冷,机械工业出版社(国家科学技术学术著作出版基金资助出版,机械工业出版社高水平著作出版基金资助项目),2002年7月第1版。ISBN-7-111-09532-4
2. 王如竹、丁国良等著。最新制冷空调技术。科学出版社,2002年9月第1版。ISBN7-03-010677-6
3. 王如竹、代彦军编著.太阳能制冷,化学工业出版社,2007年1月。ISBN7-5025-9317-9
4. 王如竹主编。制冷学科进展研究与发展报告。科学出版社,2007年4月第1版。ISBN978-7-03-018779-6
5. 王如竹,王丽伟,吴静怡著。吸附式制冷理论与应用。科学出版社,2007年9月第1版。ISBN978-7-03-019886-0
6. 张鹏,王如竹著。超流氦传热。科学出版社,2009年1月第1版。ISBN978-7-03-020240-6
7. 王如竹,翟晓强主编。绿色建筑能源系统,bat365在线中国官网登录入口出版社,2013年10月。ISBN:987-7-313-10243-0
8. Ruzhu Wang, Liwei Wang, Jingyi Wu. Adsorption Refrigeration Technology: Theory and application, John Wiely & Sons Singapore Pte. Ltd. 2014, ISBN:978-1-118-19743-1
9. R.Z. Wang, T.S. Ge., Advances in Solar Heating and Cooling., Elsevier-Woodhead Publishing publications, 2016, ISBN: 978-0-08-100301-5
10. R.Z. Wang, X.Q. Zhai. Handbook of Energy Systems in Green Building, Springer,2018, ISBN:978-3-662-49088-4
11. Liwei Wang, Guoliang An, Jiao Gao, Ruzhu Wang. Property and Energy Conversion Technology of Solid Composite Sorbents. Springer, 2021. Electronic ISSN 1868-1212; Print ISSN 1612-1317
12. 王如竹,何雅玲主编. 低品位余热的网络化利用,科学出版社,2021年11月第1版。ISBN 978-7-03-070392-7
13. 王如竹,李勇主编. 新能源系统,机械工业出版社,2021年12月第1版。ISBN 978-7-111-69292-8
近期顶刊论文:
ITEWA Publications
1. Yaodong Tu,Ruzhu Wang*, Yannan Zhang, Jiayun Wang. Progress and Expectation of Atmospheric Water Harvesting. Joule (2018). 2, 1452-1475. https://doi.org/10.1016/j.joule.2018.07.015
2. Bangjun Li, Lingji Hua, Yaodong Tu, Ruzhu Wang*. A Full-Solid-State Humidity Pump for Localized Humidity Control. Joule (2019)3, 1427-1436. https://doi.org/10.1016/j.joule.2019.03.018
3. Si Wu, Tingxian Li,* Zhen Tong, Jingwei Chao, Tianyao Zhai, Jiaxing Xu, Taisen Yan, Minqiang Wu, Zhenyuan Xu, Hua Bao, Tao Deng,* and Ruzhu Wang*.. High-Performance Thermally Conductive Phase Change Composites by Large-Size Oriented Graphite Sheets for Scalable Thermal Energy Harvesting. Advanced Materials (2019)31, 1905099. https://doi.org/10.1002/adma.201905099
4. Chenxi Wang, Lingji Hua,Hongzhi Yan, Bangjun Li, Yaodong Tu, Ruzhu Wang*.(2020). A Thermal Management Strategy for Electronic Devices Based on Moisture Sorption-Desorption Processes, Joule (2019), 4, 435–447. https://doi.org/10.1016/j.joule.2019.12.005
5. Yannan Zhang , Haohui Dong , Ruzhu Wang *, Penghui Feng. Air humidity assisted sorption thermal battery governed by reaction wave model. Energy Storage Materials (2020) 27: 9–16. https://doi.org/10.1016/j.ensm.2020.01.012
6. Jiaxing Xu, Tingxian Li,* Jingwei Chao, Si Wu, Taisen Yan, Wenchen Li, Biye Cao, and Ruzhu Wang* (2020). Efficient Solar-Driven Water Harvesting from Arid Air with Metal–Organic Frameworks Modified by Hygroscopic Salt. Angew. Chem. Int. Ed. (2020), 59, 2–11. https://doi.org/10.1002/anie.201915170
7. Zhenyuan Xu, Lenan Zhang, Lin Zhao, Bangjun Li, Bikram Bhatia, Chenxi Wang, Kyle L. Wilke, Youngsup Song, Omar Labban,John H. Lienhard, Ruzhu Wang * and Evelyn N. Wang *. Ultrahigh-efficiency desalination via a thermally-localized multistage solar still. Energy & Environmental Science, 2020, 13, 830 -839. https://doi.org/10.1039/c9ee04122b
8. Yannan Zhang, Ruzhu Wang*. Sorption Thermal Energy Storage: Concept, Process, Applications and Perspectives. Energy Storage Materials 27 (2020) 352–369.
https://doi.org/10.1016/j.ensm.2020.02.024
9. Akram Entezari, Mojtaba Ejeian, Ruzhu Wang*. Super atmospheric water harvesting hydrogel with alginate chains modified with binary salts. ACS Materials Letters, 2020, 2, 5, 471–477. https://doi.org/10.1021/acsmaterialslett.9b00315
10. Xuancan Zhu, Tianshu Ge,* Fan Yang,Meng Lyu, Chunping Chen, Dermot O’Hare, and Ruzhu Wang*. Efficient CO2 Capture from Ambient Air with Amine-Functionalized Mg–Al Mixed Metal Oxides. Journal of Materials Chemistry A, https://doi.org/10.1039/D0TA05079B
11. Jiaxing Xu,† Jingwei Chao,† Tingxian Li,†,* Taisen Yan, Si Wu, Minqiang Wu, Bingchen Zhao, and Ruzhu Wang*. Near-Zero-Energy Smart Battery Thermal Management Enabled by Sorption Energy Harvesting from Air. ACS Central Science 2020, https://dx.doi.org/10.1021/acscentsci.0c00570.
12. Si Wu,† Tingxian Li, †* Minqiang Wu, Jiaxing Xu, Yihao Hu, Jingwei Chao,Taisen Yan and Ruzhu Wang*. Highly thermally conductive and flexible phase change composites enabled by polymer/graphite nanoplatelet-based dual networks for efficient thermal management. Journal of Materials Chemistry A, 2020, 8, 20011-20020 https://doi.org/10.1039/D0TA05904H
13. Larisa G. Gordeeva, Yaodong Tu, Quanwen Pan, M.L. Palash, Bidyut B. Saha, Yuri I. Aristov and Ruzhu Wang*, Metal-organic frameworks for energy conversion and water harvesting: a bridge between thermal engineering and material science, Nano Energy, Volume 84, June 2021, 105946 https://doi.org/10.1016/j.nanoen.2021.105946
14. Lingj Hua,Jiaxing Xu,Ruzhu Wang*. Exergy-efficient boundary and design guidelines for atmospheric water harvesters with nano-porous sorbents,Nano Energy, Volume 85, July 2021, 105977,https://doi.org/10.1016/j.nanoen.2021.105977
15. Qiuming Ma, Zhenyuan Xu, Ruzhu Wang*. Distributed solar desalination by membrane distillation: current status and future perspectives. Water Research (2021), 198, 117154. https://doi.org/10.1016/j.watres.2021.117154
16. Taisen Yan, Tingxian Li*, Jiaxing Xu, Jingwei Chao, Ruzhu Wang*, Yuri I. Aristov, Larisa G. Gordeeva, Pradip Dutta and S. Srinivasa Murthy. Ultrahigh-Energy-Density Sorption Thermal Battery Enabled by Graphene Aerogel-Based Composite Sorbents for Thermal Energy Harvesting from Air. ACS Energy Letters 2021, 6, 5, 1795–1802, https://doi.org/10.1021/acsenergylett.1c00284
17. M. Ejeian, R.Z. Wang*. Adsorption-based atmospheric water harvesting, Joule, 5, 1678–1703, July 21, 2021. https://doi.org/10.1016/ j.joule.2021.04.005
18. Si Wu, Tingxian Li*, Minqiang Wu, Jiaxing Xu, Jingwei Chao,Yihao Hu, Taisen Yan, Qin-Yi Li , and Ruzhu Wang*. Dual-Functional Aligned and Interconnected Graphite Nanoplatelet Networks for Accelerating Solar Thermal Energy Harvesting and Storage within Phase Change Materials. ACS Appl. Mater. Interfaces 2021, 13, 16, 19200–19210. https://doi.org/10.1021/acsami.0c22814
19. Xuancan Zhu, Meng Lyu, Tianshu Ge*, Fan Yang, Dermot O’Hare, Ruzhu Wang*. Modified layered double hydroxides for efficient and reversible carbon dioxide capture from air. Cell Reports Physical Science 2, 100484 July 21, 2021. https://doi.org/10.1016/j.xcrp.2021.100484
20. Tingxian Li*, Minqiang Wu, Si Wu, Shizhao Xiang, Jiaxing Xu, Jingwei Chao, Taisen Yan, Tao Deng*, Ruzhu Wang*. Highly conductive phase change composites enabled by vertically-aligned reticulated graphite nanoplatelets for high-temperature solar photo/ electro-thermal energy conversion, harvesting and storage. Nano Energy, Volume 89, Part A, November 2021, 106338 https://doi.org/10.1016/j.nanoen.2021.106338
21. M.Q. Wu, S. Wu, Y.F. Cai, R.Z. Wang, T.X. Li∗. Form-stable phase change composites: Preparation, performance, and applications for thermal energy conversion, storage and management, Energy Storage Materials 42 (2021) 380–417 https://doi.org/10.1016/j.ensm.2021.07.019
22. Yaohui Feng, Tianshu Ge*, Bin Chen, Guowu Zhan, Ruzhu Wang*. A regulation strategy of sorbent stepwise position for boosting atmospheric water harvesting in arid area, Cell Reports Physical Science 2, 100561, September 22, 2021, https://doi.org/10.1016/j.xcrp.2021.100561
23. Z.Y. Zeng, B.C. Zhao, R.Z. Wang*. Passive day and night heating for zero energy buildings with solar-based adsorption thermal battery. Cell Reports Physical Science 2, 100578, September 22, 2021, https://doi.org/10.1016/j.xcrp.2021.100578
24. Jiaxing Xu,† Tingxian Li,*,† Taisen Yan,† Si Wu, Minqiang Wu, Jingwei Chao, Xiangyan Huo, Pengfei Wang, and Ruzhu Wang*. Ultrahigh solar-driven atmospheric water production enabled by scalable rapid-cycling water harvester with vertically aligned nanocomposite sorbent. Energy & Environmental Science 2021. https://doi.org/10.1039/D1EE01723C
25. Tianyu Yang, Lurong Ge, Tianshu Ge,* Guowu Zhan, and Ruzhu Wang*. Binder-Free Growth of Aluminum-Based Metal–Organic Frameworks on Aluminum Substrate for Enhanced Water Adsorption Capacity. Adv. Funct. Mater. 2021, 2105267 . https://doi.org/10.1002/adfm.202105267
26. Fangfang Deng , Chenxi Wang , Chengjie Xiang , Ruzhu Wang *. Bioinspired topological design of super hygroscopic complex for cost-effective atmospheric water harvesting, Nano Energy 90 (2021) 106642. https://doi.org/10.1016/j.nanoen.2021.106642
27. Si Wu, Tingxian Li *, Zhao-Yang Zhang, Tao Li, and Ruzhu Wang*. Photoswitchable phase change materials for unconventional thermal energy storage and upgrade. Matter, 2021, 4:3385–3399. https://doi.org/10.1016/j.matt.2021.09.017
28. He Shan, Quanwen Pan, Chengjie Xiang, Primoz Poredos, Qiuming Ma, Zhanyu Ye, Guodong Hou, and Ruzhu Wang*. High-yield solar-driven atmospheric water harvesting with ultra-high salt content composites encapsulated in porous membrane, Cell Reports Physical Science (2021), 2, 100664, https://doi.org/10.1016/j.xcrp.2021.100664
29. Zhangli Liu, Jiaxing Xu, Min Xu*, Caifeng Huang, Ruzhu Wang, Tingxian Li * & Xiulan Huai*. Ultralow-temperature-driven water-based sorption refrigeration enabled by low-cost zeolite-like porous aluminophosphate. NATURE COMMUNICATIONS,| (2022) 13:193 | https://doi.org/10.1038/s41467-021-27883-4.
30. Wenwen Wang, Quanwen Pan, Zheli Xing, Xueying Liu, Yanjun Dai, Ruzhu Wang, Tianshu Ge, Viability of a practical multicyclic sorption-based water harvester with improved water yield. Water Research, Volume 211, 1 March 2022, 118029 https://doi.org/10.1016/j.watres.2021.118029
31. Fangfang Deng, Chengjie Xiang, Chenxi Wang and Ruzhu Wang *.Sorption-tree with scalable hygroscopic adsorbent-leaves for water harvesting. Journal of Materials Chemistry A, 2022, 10, 6576 – 6586 DOI: 10.1039/d2ta00484d
32. H.R.Liu,C.X.Wang,B.J.Li,L.J.Hua,J.Q.Yu,R.Z.Wang*. Reversible Sweat Cooling on Mobile Electronic Devices by Metal-Organic Frameworks based Moisture Sorption-Desorption Process. Materials Today Nano, 2022, 18, https://doi.org/10.1016/j.mtnano.2022.100198
33. Primož Poredoš, He Shan, Chenxi Wang, Fangfang Deng and Ruzhu Wang. Sustainable water generation: Grand challenges in continuously atmospheric water harvesting. Energy & Environmental Science, 2022, 15, 3223 - 3235, https://doi.org/10.1039/D2EE01234K
34. Primoz Poredos, He Shan, and Ruzhu Wang*. Dehumidification with solid hygroscopic sorbents for low-carbon air conditioning, Joule 6, 1390–1393, July 20, 2022. DOI:https://doi.org/10.1016/j.joule.2022.06.020, https://www.cell.com/joule/fulltext/S2542-4351(22)00294-X
35. Zhu, X.; Xie, W.; Wu, J.; Miao, Y.; Xiang, C.; Chen, C.; Ge, B.; Gan, Z.; Yang, F.; Zhang, M.; O'Hare, D.; Li, J.; Ge, T.; Wang, R., Recent advances in direct air capture by adsorption. Chemical Society Reviews, 2022, 51, 6574 – 6651. DOI: 10.1039/d1cs00970b.
36. Chengjie Xiang, Fangfang Deng, RuzhuWang*. Passive rapid-cycling atmospheric water generator. Matter, 2022, 5(8): 2487-2490. https://doi.org/10.1016/j.matt.2022.06.032
37. Zhenpeng Li, Tao Ma*, Senji Li, Wenbo Gu, Lin Lu, Hongxing Yang, Yanjun Dai, and Ruzhu Wang*. High-Efficiency, Mass-Producible, and Colored Solar Photovoltaics Enabled by Self-Assembled Photonic Glass. ACS Nano 2022, 16, 7, 11473–11482. https://doi.org/10.1021/acsnano.2c05840
38. He Shan, Chunfeng Li, Zhihui Chen, Wenjun Ying, Primož Poredoš, Zhanyu Ye, Quanwen Pan*, Jiayun Wang, Ruzhu Wang*. Exceptional water production yield enabled by batch-processed portable water harvester in semi-arid climate. Nature Communications | (2022) 13:5406, https://doi.org/10.1038/s41467-022-33062-w
39. Zhihui Chen, Zhao Shao, Yucheng Tang, Fangfang Deng, Shuai Du and Ruzhu Wang*. Study of the Scale-Up Effect on the Water Sorption Performance of MOF Materials. ACS Materials Au, 2022. https://doi.org/10.1021/acsmaterialsau.2c00052
40. Tingxian Li†*, Minqiang Wu†, Jiaxing Xu†, Ruxue Du, Taisen Yan, Pengfei Wang, Zhaoyuan Bai, Ruzhu Wang, Siqi Wang. Simultaneous Atmospheric Water Production and 24-hour Power Generation Enabled by Moisture-induced Energy Harvesting. Nature Communications | (2022) 13: 6771. https://doi.org/10.1038/s41467-022-34385-4
41. Jiayun Wang, Lingji Hua, Chunfeng Li, Ruzhu Wang*.Atmospheric water harvesting: critical metrics and challenges, Energy & Environmental Science, 2022, 15, 4867. https://doi.org/10.1039/d2ee03079a
42. Akram Entezari, He Lin, Oladapo Christopher Esan, Weili Luo, Ruzhu Wang*, Ruoyu You* and Liang An*. Continuous humidity pump and atmospheric water harvesting inspired by a tree-pumping system, Cell Reports Physical Science (2023), https://doi.org/10.1016/j.xcrp.2023.101278
43. Entezari, A., Esan, O. C., Yan, X., Wang, R., An, L., Sorption-Based Atmospheric Water Harvesting: Materials, Components, Systems, and Applications. Adv. Mater. 2023, 2210957. https://doi.org/10.1002/adma.202210957
44. Ge, L., Feng, Y., Xue, Y., Dai, Y., Wang, R. and Ge, T. (2023), Mesoporous Silica-Guided Synthesis of Metal–Organic Framework with Enhanced Water Adsorption Capacity for Smart Indoor Humidity Regulation. Small Struct. 2300055. https://doi.org/10.1002/sstr.202300055
45. Wang, Xueyang,Lin, Zhenhui,Gao, Jintong,Xu, Zhenyuan,Li, Xiuqiang*,Xu, Ning,Li, Jinlei,Song, Yan,Fu, Hanyu,Zhao, Wei,Wang, Shuaihao,Zhu, Bin,Wang, Ruzhu,Zhu, Jia*. Solar steam-driven membrane filtration for high flux water purification. Nat Water 1, 391–398 (2023). https://doi.org/10.1038/s44221-023-00059-8
46. Primož Poredoš and Ruzhu Wang. Sustainable cooling with water generation. Science 380,458-459(2023).DOI:10.1126/science.add1795
47. Shan, H., Poredoš, P., Ye, Z., Qu, H., Zhang, Y., Zhou, M., Wang, R., Tan, S. C., All-Day Multicyclic Atmospheric Water Harvesting Enabled by Polyelectrolyte Hydrogel with Hybrid Desorption Mode. Adv. Mater. 2023, 2302038. https://doi.org/10.1002/adma.202302038
48. Hao Zou, Chenxi Wang, Jiaqi Yu, Danfeng Huang*, Ronggui Yang*, Ruzhu Wang*, Eliminating greenhouse heat stress with transparent radiative cooling film, Cell Reports Physical Science, 2023, 101539, https://doi.org/10.1016/j.xcrp.2023.101539.,
49. Zhao Shao, Yu-Cheng Tang, Haotian Lv, Zhi-Shuo Wang, Primož Poredoš, Yaohui Feng, Ruikun Sun, Xi Feng, Zhihui Chen, Zhenxuan Gao, Dong-Dong Zhou*, Jie-Peng Zhang*, Ruzhu Wang*. High-performance solar-driven MOF AWH device with ultra-dense integrated modular design and reflux synthesis of Ni2Cl2(BTDD), Device, 2023, 100058, ttps://doi.org/10.1016/j.device.2023.100058.
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软件版权登记及专利
累计专利163项,其中 1 EU patent, 1 USA patent, and 161 CN patents
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