Comparison of Carbon-Nanoparticle-Filled Poly(Butylene Succinate-co-Adipate) Nanocomposites for Electromagnetic Applications

被引:18
|
作者
Bleija, Miks [1 ]
Platnieks, Oskars [1 ]
Macutkevic, Jan [2 ]
Starkova, Olesja [3 ]
Gaidukovs, Sergejs [1 ]
机构
[1] Riga Tech Univ, Fac Mat Sci & Appl Chem, Inst Polymer Mat, P Valdena 3-7, LV-1048 Riga, Latvia
[2] Vilnius Univ, Fac Phys, Sauletekio 9, LT-10222 Vilnius, Lithuania
[3] Univ Latvia, Inst Mech Mat, Jelgavas 3, LV-1004 Riga, Latvia
关键词
graphene nanoplatelets; multi-walled carbon nanotubes; nanostructured carbon black; amorphous carbon black; electrostatic dissipative; electromagnetic interference shielding; anti-static; electrical conductivity; thermal conductivity; mechanical properties; MECHANICAL-PROPERTIES; THERMAL-CONDUCTIVITY; BLACK; PERCOLATION; GRAPHENE; BEHAVIOR; POLYCARBONATE; POLYETHYLENE; SUCCINATE); THRESHOLD;
D O I
10.3390/nano12203671
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Electrostatic dissipative (ESD), anti-static (AS), and electromagnetic interference (EMI) shielding materials are commonly based on commodity fossil-fuel-based plastics. This, in turn, contributes to ever-growing non-biodegradable plastic pollution. Graphene nanoplatelets (GN), multi-walled carbon nanotubes (MWCNT), nanostructured carbon black (NCB), and amorphous carbon black (CB) were utilized as nanofillers to prepare bio-based and biodegradable poly(butylene succinate-co-adipate) (PBSA) nanocomposites. Solvent-cast composites were prepared with 1.1 to 30.0 vol.% nanoparticle loading. The literature mainly focuses on relatively low loadings; therefore, for this research, filler loadings were increased up to 30 vol.% but the maximum loading for NCB and CB loadings only reached 17.4 vol.% due to a lack of dimensional stability at higher loadings. The composites were characterized using tensile testing, volumetric and surface conductivity measurements, thermal conductivity measurements, dielectric spectroscopy in the microwave region, and transmittance in the terahertz range. Tensile tests showed excellent carbon filler compatibility and enhanced tensile strength for loadings up to 5 vol.% (up to 20 vol.% for MWCNT). The highest thermal conductivity values were reached for the MWCNT filler, with the 30.0 vol.% filled composite reaching 0.756 W/mK (262% increase over PBSA). All fillers were able to produce composites that yielded volume conductivities above 10(-10) S/m. Composites with MWCNT, GN, and NCB inclusions above the percolation threshold are suitable for EMI applications in the microwave and THz frequency range.
引用
收藏
页数:17
相关论文
共 50 条
  • [1] Poly(Butylene Succinate) and Poly[(Butylene Succinate)-co-Adipate] Nanocomposites
    Ojijo, Vincent
    Ray, Suprakas Sinha
    Green Energy and Technology, 2012, 50 : 165 - 218
  • [2] Crystallization kinetics and morphology of poly(butylene succinate-co-adipate)
    Ren, MQ
    Song, JB
    Song, CL
    Zhang, HL
    Sun, XH
    Chen, QY
    Zhang, HF
    Mo, ZS
    JOURNAL OF POLYMER SCIENCE PART B-POLYMER PHYSICS, 2005, 43 (22) : 3231 - 3241
  • [3] Performance of biodegradable microcapsules of poly(butylene succinate), poly(butylene succinate-co-adipate) and poly(butylene terephthalate-co-adipate) as drug encapsulation systems
    Brunner, Cornelia Theresa
    Baran, Erkan Tuerker
    Pinho, Elisabete Duarte
    Reis, Rui Luis
    Neves, Nuno Meleiro
    COLLOIDS AND SURFACES B-BIOINTERFACES, 2011, 84 (02) : 498 - 507
  • [4] The relations between structure and mechanical properties of poly(butylene succinate-co-adipate)/montmorillonite nanocomposites
    Ray, Suprakas Sinha
    Bousmina, Mosto
    JOURNAL OF POLYMER ENGINEERING, 2006, 26 (8-9) : 885 - 901
  • [5] Structure and properties of nanocomposites based on poly(butylene succinate-co-adipate) and organically modified montmorillonite
    Ray, SS
    Bousmina, M
    Okamoto, K
    MACROMOLECULAR MATERIALS AND ENGINEERING, 2005, 290 (08) : 759 - 768
  • [6] Pressure-volume-temperature behavior of polylactide, poly(butylene succinate), and poly(butylene succinate-co-adipate)
    Sato, Y
    Inohara, K
    Takishima, S
    Masuoka, H
    Imaizumi, M
    Yamamoto, H
    Takasugi, M
    POLYMER ENGINEERING AND SCIENCE, 2000, 40 (12): : 2602 - 2609
  • [7] Poly(butylene succinate) and poly(butylene succinate-co-adipate) for food packaging applications: Gas barrier properties after stressed treatments
    Siracusa, Valentina
    Lotti, Nadia
    Munari, Andrea
    Rosa, Marco Dalla
    POLYMER DEGRADATION AND STABILITY, 2015, 119 : 35 - 45
  • [8] Crystallization behaviors and microstructures of poly(butylene succinate-co-adipate)/modified layered double hydroxide nanocomposites
    Chen, Yi-An
    Tsai, Gang-Shian
    Chen, Erh-Chiang
    Wu, Tzong-Ming
    JOURNAL OF MATERIALS SCIENCE, 2016, 51 (08) : 4021 - 4030
  • [9] Photooxidation-induced conformational changes and degradation behaviors of poly(butylene succinate) and poly(butylene succinate-co-adipate)
    Padermshoke, Adchara
    An, Yingjun
    Kajiwara, Tomoko
    Masunaga, Hiroyasu
    Kobayashi, Yutaka
    Ito, Hiroshi
    Sasaki, Sono
    Noguchi, Hiroshi
    Kusuno, Atsushi
    Takahara, Atsushi
    JOURNAL OF POLYMER SCIENCE, 2024, 62 (16) : 3794 - 3807
  • [10] Crystallization behaviors and microstructures of poly(butylene succinate-co-adipate)/modified layered double hydroxide nanocomposites
    Yi-An Chen
    Gang-Shian Tsai
    Erh-Chiang Chen
    Tzong-Ming Wu
    Journal of Materials Science, 2016, 51 : 4021 - 4030