Polyvinylidene Fluoride Energy Harvester with Boosting Piezoelectric Performance through 3D Printed Biomimetic Bone Structures

被引:36
作者
Song, Li [1 ]
Dai, Ruixian [1 ]
Li, Yijun [1 ]
Wang, Qi [1 ]
Zhang, Chuhong [1 ]
机构
[1] Sichuan Univ, Polymer Res Inst, State Key Lab Polymer Mat Engn, Chengdu 610065, Peoples R China
基金
中国国家自然科学基金; 国家重点研发计划;
关键词
Bioinspiration; Piezoelectric composites; In-situ chemical foaming; Fused deposition modeling (FDM); Ionic liquid; POLY(VINYLIDENE FLUORIDE); IONIC-LIQUID; BETA-PHASE; SENSOR; PVDF; NANOCOMPOSITE; FABRICATION; COMPOSITES; CRYSTALLIZATION; NANOPARTICLES;
D O I
10.1021/acssuschemeng.1c01305
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
As an effective way of power-to-electricity conversion, piezoelectric energy harvesters have received extensive attention in the past decade. However, the relationship between output performance and the topological structure of piezoelectric devices is still unknown. In this study, a simple and fast in-situ chemical foaming assisted fused deposited modeling (FDM) method was developed, and complex three-dimensional (3D) bioinspired bone structures of polyvinylidene fluoride (PVDF) were successfully fabricated. The hierarchical porous structure couples advantages of arbitrary shape design by 3D printing and abundant inner pores inside the printed piezoelectric parts that amplify the stress-strain effect and improve the output capacity. Moreover, with the assistance of ionic liquid, high beta-phase content (86.72%) PVDF was achieved, producing an output of similar to 13 V and a maximum current density of similar to 0.27 mu A/cm(2), which outperforms most of the PVDF piezoelectric energy harvesters reported so far. Impressively, the as-prepared PVDF device can directly light up eight green LED bulbs and charge a 1 mu F commercial capacitor to 3.65 V within 300 s. This work highlights a new 3D printing strategy integrated with a 3D biomimetic structural design for high-performance piezoelectric energy harvesting.
引用
收藏
页码:7561 / 7568
页数:8
相关论文
共 77 条
[1]   PVDF/graphene composite nanofibers with enhanced piezoelectric performance for development of robust nanogenerators [J].
Abolhasani, Mohammad Mahdi ;
Shirvanimoghaddam, Kamyar ;
Naebe, Minoo .
COMPOSITES SCIENCE AND TECHNOLOGY, 2017, 138 :49-56
[2]   Ultrasonic wave propagation of flexible piezoelectric polymer for tactile actuator: simulation and experiment [J].
Akther, Asma ;
Kafy, Abdullahil ;
Zhai, Lindong ;
Kim, Hyun Chan ;
Shishir, M. D. Imrul Reza ;
Kim, Jaehwan .
SMART MATERIALS AND STRUCTURES, 2016, 25 (11)
[3]   An Effective Wind Energy Harvester of Paper Ash-Mediated Rapidly Synthesized ZnO Nanoparticle-Interfaced Electrospun PVDF Fiber [J].
Alam, Md. Mehebub ;
Ghosh, Sujoy Kumar ;
Sultana, Ayesha ;
Mandal, Dipankar .
ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2018, 6 (01) :292-299
[4]   Scavenging Biomechanical Energy Using High-Performance, Flexible BaTiO3 Nanocube/PDMS Composite Films [J].
Alluri, Nagamalleswara Rao ;
Chandrasekhar, Arunkumar ;
Vivekananthan, Venkateswaran ;
Purusothaman, Yuvasree ;
Selvarajan, Sophia ;
Jeong, Ji Hyun ;
Kim, Sang-Jae .
ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2017, 5 (06) :4730-4738
[5]   Bioinspired Hydroxyapatite/Poly(methyl methacrylate) Composite with a Nacre-Mimetic Architecture by a Bidirectional Freezing Method [J].
Bai, Hao ;
Walsh, Flynn ;
Gludovatz, Bernd ;
Delattre, Benjamin ;
Huang, Caili ;
Chen, Yuan ;
Tomsia, Antoni P. ;
Ritchie, Robert O. .
ADVANCED MATERIALS, 2016, 28 (01) :50-+
[6]   Highly Efficient and Durable Piezoelectric Nanogenerator and Photo-power cell Based on CTAB Modified Montmorillonite Incorporated PVDF Film [J].
Biswas, Prosenjit ;
Hoque, Nur Amin ;
Thakur, Pradip ;
Saikh, Md Minarul ;
Roy, Swagata ;
Khatun, Farha ;
Bagchi, Biswajoy ;
Das, Sukhen .
ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2019, 7 (05) :4801-4813
[7]   One-Step Solvent Evaporation-Assisted 3D Printing of Piezoelectric PVDF Nanocomposite Structures [J].
Bodkhe, Sampada ;
Turcot, Gabrielle ;
Gosselin, Frederick P. ;
Therriault, Daniel .
ACS APPLIED MATERIALS & INTERFACES, 2017, 9 (24) :20833-20842
[8]   Relationship between processing conditions, defects and thermal degradation of poly(vinylidene fluoride) in the β-phase [J].
Botelho, G. ;
Lanceros-Mendez, S. ;
Goncalves, A. M. ;
Sencadas, V. ;
Rocha, J. G. .
JOURNAL OF NON-CRYSTALLINE SOLIDS, 2008, 354 (01) :72-78
[9]   Strain characteristics of additive manufactured polyvinylidene fluoride (PVDF) actuators [J].
Burnham-Fay, Ethan D. ;
Le, Tue ;
Tarbutton, Joshua A. ;
Ellis, Jonathan D. .
SENSORS AND ACTUATORS A-PHYSICAL, 2017, 266 :85-92
[10]   A Green Route to a Low Cost Anisotropic MoS2/Poly(Vinylidene Fluoride) Nanocomposite with Ultrahigh Electroactive Phase and Improved Electrical and Mechanical Properties [J].
Cai, Kai ;
Hang, Xiao ;
Zhao, Yan ;
Zong, Ruilong ;
Zeng, Fei ;
Guo, Dong .
ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2018, 6 (04) :5043-5052