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1.
《Ceramics International》2023,49(20):32510-32520
Eco-friendly lead-free energy-storage ceramics featuring high energy storage properties and ultra-high stability have been regarded to be one of the most potential materials in the field of energy storage. In this work, a new element system, (1-x)(0.6Bi0.5Na0.5TiO3-0.4SrTiO3)-xBi[Zn2/3(Nb0.5Ta0.5)1/3]O3 ((1-x)BNST-xBZNT) lead-free ceramics, were synthesized via a conventional solid-state sintering technology. And the phase structure, microstructure and energy storage properties of the (1-x)BNST-xBZNT ceramics were comprehensively studied. After the introduction of BZNT, the average grain size of the materials is greatly decreased, thereby enhancing the dielectric breakdown strength (DBS). Additionally, the thermal stability of the ceramics is significantly improved via regulating the doping content and sintering temperature. Furthermore, the ferroelectric long-range order of the ceramics is decomposed into randomly-oriented polar nano-domains (PNRs) after introducing BZNT, leading to strong relaxor behavior and significantly reducing remanent polarization (Pr). As a result, even under a relatively low electric field of 139 kV/cm, the 0.98BNST-0.02BZNT ceramic sintered at 1150 °C possesses high values of energy storage efficiency (η) value of 92.78% and total energy storage density (Wtot) of 1.67 J/cm3 as well as remarkable thermal stability (25–175 °C), frequency stability (20–70 Hz) and fatigue resistant stability (100-105 cycles). This investigation provides a useful reference for developing advanced energy storage ceramics by regulating the doping content and sintering temperature.  相似文献   

2.
《Ceramics International》2022,48(6):7723-7729
Sodium niobate energy storage ceramics with high energy density and efficiency can be used as potential candidate materials for pulse power devices. Doping modification of dielectric ceramic matrixes is an effective means to obtain high performance. The (1-x)NaNbO3-xBi(Mg1/2Sb2/3)O3 ceramics were designed in this work. And 0.85NaNbO3-0.15Bi(Mg1/2Sb2/3)O3 showed a large Wrec of 4.65 J/cm3 at an Eb of 580 kV/cm. Excellent frequency stability of Wrec (1.67–1.7 J/cm3) and η (86%–89.1%) over frequency range of 1–100Hz was observed. Further, good temperature stability of Wrec (1.5–1.71 J/cm3) and η (68%–87%) over abroad temperature range of 20–180 °C was attained successfully. In addition, excellent power density (PD = 113 MW/cm3), large current density (CD = 1255 A/cm2) and discharge speed (0.51μs) were obtained, which demonstrates the great potential practical value of this ceramic in the energy storage applications.  相似文献   

3.
《Ceramics International》2023,49(19):31152-31162
There is still a problem of low energy storage density in dielectric capacitors which is a core component of power systems. For the improvement of the energy storage density, the linear dielectric material CaTiO3 (CT) was introduced in Na0.5Bi0.5TiO3 (NBT) ceramics in this paper. By modifying the A site, a new relaxor ferroelectric ceramic was successfully synthesized and attained a recoverable density (Wrec) of 2.34 J/cm3 at x = 0.18. Moreover, the preparation process was optimized in this paper. Through the viscous polymer process (VPP) route, the energy density (WA) of 82NBT-18CTVPP ceramic further reaches 6.45 J/cm3 at 340 kV/cm, with efficiency (η) up to 75% and a Wrec of 4.82 J/cm3. At the same time, the change of Wrec is small at temperature (30–150 °C) and frequency (1 Hz–300 Hz), which demonstrates its excellent stability. The discharge power density reaches about 180 MW/cm3 and the discharge time is 0.117 μs, which indicates its excellent pulse discharge performance. The results show that 82NBT-18CT lead-free relaxation ferroelectric material is expected to become ideal for high-energy storage applications.  相似文献   

4.
《Ceramics International》2022,48(18):26466-26475
Sodium niobate energy storage ceramics with good environmental performance are widely used in electric power conversion and pulse power system, large energy storage density and high efficiency, huge power density and charge and discharge faster. In this work, (1-x)NaNbO3-xBi(Ni2/3Nb1/6Ta1/6)O3 [(1-x)NN-xBNNT] (0.12 ≤ x ≤ 0.18) ceramics system were prepared by solid state reaction method. By introducing Bi(Ni2/3Nb1/6Ta1/6)O3 (BNNT), a relaxation strategy was constructed, which significantly improved the energy storage properties of NaNbO3 (NN) based ceramics. Finally, comparatively high recoverable energy density (Wrec) of 3.43 J/cm3 and large energy storage efficiency (η) of 83.3% were obtained in 0.86NN-0.14BNNT ceramics. Besides discharge energy density (Wd) of 0.69 J/cm3, ultra fast charge-discharge rate (t0.9) of 55 ns, the power density (PD) of 70.66 MW/cm3 and the current density (CD) of 883.23 A/cm2 were also observed in ceramic.  相似文献   

5.
《Ceramics International》2022,48(14):19864-19873
Dielectric energy storage materials with congenitally high power densities and ultrafast discharge rates have been extensively studied for emergent applications. As a typical and traditional dielectric material, paraelectric Ba0.4Sr0.6TiO3 (BST) ceramic exhibits a moderate dielectric constant (εr), low dielectric loss and slightly nonlinear P–E hysteresis. However, its energy storage density (W) is extremely low because of its low maximum polarisation (Pmax) and weak breakdown strength (BDS). In this study, ferroelectric Na0.5Bi0.5TiO3 (NBT) was introduced into paraelectric BST to enhance energy storage performance. The results show that the introduction of NBT induced polar nano-regions (PNRs) in the paraelectric matrix, resulting in a slim hysteresis loop with low remnant polarisation (Pr) and high Pmax simultaneously. Furthermore, owing to a decrease in the oxygen vacancy concentration and an increase in the band gap energy, the BDS of the BST ceramic also significantly increased. As a consequence, a remarkable energy storage density (Wrec = 3.89 J/cm3) and a high energy storage efficiency (η = 83.8%) were realised in the 0.75Ba0.4Sr0.6TiO3-0.25Bi0.5Na0.5TiO3 (0.75BST–0.25NBT) ceramic under a practical electric field of 360 kV/cm. Moreover, the ceramic also exhibited an excellent current density (~1029.7 A/cm2) and ultrahigh power density (~128.7 MW/cm2). The attained energy storage performances indicate that the NBT-modified BST ceramics are promising materials for high energy storage capacitor applications field.  相似文献   

6.
《Ceramics International》2022,48(10):13862-13868
In the development of dielectric ceramic materials, the requirements of miniaturization and integration are becoming increasingly prominent. How to obtain greater capacitance in a smaller volume is one of the important pursuits. In this paper, lead-free (1-x)NaNbO3-xBi(Ni1/2Sb2/3)O3(xBNS) with high recoverable energy storage density (Wrec) and relatively high energy storage efficiency(η) were prepared by a solid state sintering method. Bi(Ni1/2Sb2/3)O3 was introduced into the Sodium niobate ceramics(NN)-based ceramics to reduce the sintering temperature and increase the maximum breakdown field strength (Eb). Finally, 0.15BNS achieved a high Eb of 460 kV/cm, Wrec of 3.7 J/cm3 and η of 77%. In addition, the sample maintained excellent stability in the frequency range of 1–120 Hz. And the 0.15BNS ceramics also exhibited high power density (PD = 36.4 MW/cm3), large current density (CD = 520.8 A/cm2) and relatively fast charge-discharge rate (t0.9 = 1050 ns). These results demonstrate the potential application value of xBNS ceramics in energy storage capacitors.  相似文献   

7.
Dielectric capacitors with decent energy storage and fast charge-discharge performances are essential in advanced pulsed power systems. In this study, novel ceramics (1-x)NaNbO3-xBi(Ni2/3Nb1/3)O3(xBNN, x = 0.05, 0.1, 0.15 and 0.20) with high energy storage capability, large power density and ultrafast discharge speed were designed and prepared. The impedance analysis proves that the introducing an appropriate amount of Bi(Ni0·5Nb0.5)O3 boosts the insulation ability, thus obtaining a high breakdown strength (Eb) of 440 kV/cm in xBNN ceramics. A high energy storage density (Wtotal) of 4.09 J/cm3, recoverable energy storage density (Wrec) of 3.31 J/cm3, and efficiency (η) of 80.9% were attained in the 0.15BNN ceramics. Furthermore, frequency and temperature stability (fluctuations of Wrec ≤ 0.4% over 5–100 Hz and Wrec ≤ 12.3% over 20–120 °C) were also observed. The 0.15BNN ceramics exhibited a large power density (19 MW/cm3) and ultrafast discharge time (~37 ns) over the range of ambient temperature to 120 °C. These enhanced performances may be attributed to the improved breakdown strength and relaxor behavior through the incorporation of BNN. In conclusion, these findings indicate that 0.15BNN ceramics may serve as promising materials for pulsed power systems.  相似文献   

8.
《Ceramics International》2020,46(8):12080-12087
(1-x) Ba(Zr0.2Ti0.8)O3-x Na0.5Bi0.5TiO3 (x = 0, 10, 20 30, 40, 50 mol%) (BZTN) ceramics are prepared by the traditional solid phase method. All BZTN ceramics exhibit a pseudo-cubic BZT based perovskite structure. Both the average grain size and the relaxor ferroelectricity of BZTN ceramics gradually increase with increasing NBT content. The Wrec of 3.22 J/cm3 and η of 91.2% is obtained for the BZTN40 ceramic at 241 kV/cm. BZTN40 ceramic also exhibits good temperature stability from room temperature to 150 °C and frequency stability from 1 Hz to 100 Hz. A PD of 0.621 J/cm3 and a t0.9 of 82 ns is obtained for the BZTN40 ceramic at 120 kV/cm. BZTN ceramics show application potential in energy storage and pulse power capacitors.  相似文献   

9.
《Ceramics International》2022,48(8):10789-10802
In this study, NaNbO3 (NN) was introduced into Ba(Zr0.15Ti0.85)O3 (BZT) to form a solid solution with relaxor ferroelectric characteristics. The dielectric breakdown strength (BDS) of the specimen with 6 mol.% NN reached 680 kV/cm, the corresponding recoverable energy storage density (Wrec) was 5.15 J/cm3, and the energy storage efficiency (η) was 77%. The dissolution of Na + ions at the A position and Nb5+ ions at the B position of the perovskite structure reduced the concentration of oxygen vacancies in the lattice and compensated for defects. The doped ceramics exhibited lower dielectric loss and better thermal stability: the Wrec value was 2 ± 1% J/cm3 at 30–120 °C. In particular, in the 0.02NN ceramics, a ΔT of 1.81 K was achieved at 130 kV/cm, and the operating temperature zone expanded with the increase in doping concentration. The introduction of NN resulted in BZT ceramics that possess excellent energy storage performance and electrocaloric effect properties.  相似文献   

10.
《Ceramics International》2021,47(18):25800-25809
High energy storage and charge-discharge performances under low electric field are desirable for lead-free dielectric materials because of environmental hazards, the risk of high voltage and the high cost of insulation technology. Herein, lead-free ceramics based on 0.6BNT-0.4Sr0.775Bi0.15TiO3 (BNT-SBT) were designed, which simultaneously achieves a large energy storage density (Wrec~ 2.41 J/cm3) and a high efficiency (η~87.5%) under a low electric field of 190 kV/cm due to enhanced dielectric properties and the relaxation response. Moreover, the energy storage properties of the BNT-SBT ceramic exhibit moderate temperature stability, excellent frequency dependence, and cycling reliability. Furthermore, the charge-discharge performance simultaneously features a high power density (PD~51.4 MW/cm3), an ultrafast discharge speed (t0.9–77 ns), and remarkable stability against temperature and cycling. This study exploits a high-efficiency BNT-related ceramics with concurrently high energy storage and charge-discharge performances under low electric fields, which provides great potential in practical dielectric capacitor applications.  相似文献   

11.
《Ceramics International》2022,48(22):32937-32945
The low recoverable energy storage density (Wrec) of bulk ceramics has long limited their miniaturization and lightweight development. Here, we designed the (1-x)(0.90NaNbO3-0.10BaTiO3)-xNa0.2Bi0.4La0.2TiO3 (NN-10BT-xNBLT) ceramics. With the introduction of NBLT, the dielectric breakdown strength (BDS) of NN-10BT-based ceramics increased from 174.8 kV/cm to 289.1 kV/cm. A promising finding is that the NN-10BT-15NBLT ceramic has an ultrahigh energy storage density W of 3.42 J/cm3 and a large energy storage efficiency η of 78.9%, as well as excellent frequency and thermal stability. The NN-10BT-15NBLT ceramic, on the other hand, has an outstanding current density CD of 1021.21 A/cm2 together with a high power density PD of 102.12 MW/cm3 at 200 kV/cm. Most importantly, the variation of charge-discharge properties (CD and PD) is only ?7.8% after 104 cycles, suggesting that the capacitor has potential practical application significance.  相似文献   

12.
Lead-free ceramics with prominent energy storage properties are identified as the most potential materials accessed in the dielectric capacitors. Nevertheless, high recoverable energy storage density (Wrec), large energy storage efficiency (η) and preferable temperature stability can hardly be met simultaneously. The Bi(Zn2/3Ta1/3)O3 and NaNbO3 components are doped in KNN ceramics to substantiate the reliability of this tactic. A high recoverable energy density (Wrec) of ~ 4.55 J/cm3 and a large energy storage efficiency (η) of ~ 87.8% are acquired under the dielectric breakdown strength (DBS) of ~ 375 kV/cm, along with a splendid thermal stability (Wrec variation: ~ 2.3%, η variation: ~ 4.9%) within the temperature range of 20 ℃? 120 ℃. This article demonstrates that the KNN-based ceramics integrate high energy storage properties and outstanding temperature stability at the same time, which broadens the application fields of pulse power systems.  相似文献   

13.
《Ceramics International》2023,49(12):20326-20333
A small applied electric field is particularly crucial in the practical application of dielectric ceramic capacitors, since it means a longer lifetime of the capacitors in practical energy storage applications. Based on the traditional ferroelectric BaTiO3, the (1-x)(Ba0.6Na0.2Bi0.2)TiO3-xNaNbO3 medium-entropy material is designed in this paper, which correlates configuration entropy with energy storage performance. The findings demonstrate that the BNBT-0.15NN ceramic synchronously achieves high energy storage density (2.95 J/cm3) and the energy storage efficiency (95.2%) at 180 kV/cm when the configuration entropy rises to 1.43R. The idea of medium-entropy energy storage under low electric field is proposed for the first time, opening up a new avenue for research into the preparation of high energy storage dielectric ceramics via exploring medium-entropy composition.  相似文献   

14.
Lead-free (1-x)BaTiO3-xSr(Zn1/3Nb2/3)O3 (abbreviated as BT-xSZN, x = 0–0.08) relaxor ferroelectric ceramics were prepared using the traditional solid phase technology, and the effects of SZN modification on their phase structures, microstructures, dielectric performance, ferroelectricity and energy storage performance were studied in detail. A pure perovskite phase was observed in the BT-xSZN ceramics. The BT-based ceramics modified by SZN exhibited refined grain size. As the SZN content was increased, the breakdown strength initially increased and then decreased, and the ferroelectric loops gradually became ‘slim’. The BT-xSZN (x = 0.07) ceramics demonstrated a favourable energy storage performance with high recoverable energy density (Wrec = ~1.45 J/cm3) and energy storage efficiency (η = ~83.12%) at 260 kV/cm. Results indicate that the energy storage performance of BaTiO3 ceramics modified by SZN can be remarkably improved, widening their applications in energy storage at low temperatures.  相似文献   

15.
(1–x)Ba0.55Sr0.45TiO3–xBi(Mg0.5Ti0.5)O3 (x = 0, 0.08, 0.1, 0.12, 0.15, 0.2) ceramics were fabricated via a solid-state reaction route. The ultrahigh recoverable energy density (Wrec = 4.05 J cm?3), efficiency (η = 78%), maximum polarization (Pmax = 51.40 μC cm?2), and high dielectric breakdown strength (BDS = 230 kV cm?1) were achieved for the 0.9BST?0.1BMT ceramic. The fast discharge rate (t0.9~0.14 μs), current density (CD~637.02 A cm?2), high power density (PD~38.70 MW cm?3), good temperature stability (20?180 °C), frequency stability (10?500 Hz), and fatigue endurance for cycling (105) of 0.9BST?0.1BMT ceramic make it suitable for the development of energy-storage devices. The relaxor behavior with a high Wrec (3.06 J cm?3) and η (93%) at BDS (220 kV cm?1) was also achieved for the 0.8BST?0.2BMT ceramic. This study systematically investigates the correlation among the structural, dielectric, impedance, and energy storage properties of BMT-doped BST ceramics.  相似文献   

16.
《Ceramics International》2022,48(1):776-783
High-performance lead-free dielectric containers have excellent energy storage performance such as higher power density and energy density. While being eco-friendly materials, lead-free dielectric materials are more suitable for pulse power systems than other dielectric materials. In this study, Ta5+and Bi3+ ions were introduced into the A site and B site of the NaNbO3 matrix. The introduction of Bi3+ ions induced the formation of a vacancy in the A site, yielding Na(1-3x)BixNb0.85Ta0.15O3 (NBNT, x = 0.05, 0.08, 0.11, 0.14) ceramics. The recoverable energy density (Wrec) and the energy storage efficiency (η) were highest for the Na0.67Bi0.11Nb0.85Ta0.15O3 ceramic, with values of 3.37 J/cm3 and 89% respectively. Batteries employing the Na0.67Bi0.11Nb0.85Ta0.15O3 ceramic achieved a current density of 830.4 A/cm2, an energy density of 49.8 MW/cm3 and 60.2 ns discharge time. These results show that the Na0.67Bi0.11Nb0.85Ta0.15O3 ceramic is an effective energy storage material with broad application prospects.  相似文献   

17.
《Ceramics International》2022,48(22):33553-33562
In this investigation, La2O3 was doped into 0.85(0.65BF-0.35BT)-0.15Sr0.7Bi0.2TiO3 (BF-BT-SBT) to form a solid solution with relaxation ferroelectric properties. The dielectric breakdown strength (BDS) of 1% mole of La doping was 220 kV/cm, the maximum recoverable energy storage (Wrec) was 2.35 J/cm3, and the energy storage efficiency (η) was 71%. The relationship between ceramic properties and microstructure was investigated in detail. Doping with La has the following main features: (1) The dissolution of La3+ ions in the A position of the original perovskite structure reduced the concentration of oxygen vacancies in the lattice and played a role of compensating the defects. (2) The dielectric loss of ceramics was reduced, the impedance was greatly increased, and the specimen exhibited a high-temperature stability: a maximum Wrec of 4.04 ± 1.7% J/cm3 in 30–130 °C. (3) The core–shell–like with single phase structure in La-doped ceramics had been successfully observed, which may become a strategy for preparing high-performance ceramics. Higher BDS and denser structures were obtained in 0.01 La ceramics by further optimizing the preparation of the above compositions by the viscous polymer process (VPP). The BDS of 0.01La ceramics prepared by VPP reached 480 kV/cm, the effective energy storage density reached 6.15 J/cm3, and the η was about 81%. This made La-doped 15SBT (chemical composition of BF-BT-SBT + La2O3) ceramics become a potential candidate material for energy storage devices.  相似文献   

18.
The application of advanced pulse power capacitors strongly depends on the fabrication of high-performance energy storage ceramics. However, the low recoverable energy storage density (Wrec) and energy efficiency (η) become the key links limiting the development of energy storage capacitors. In this work, a high Wrec of ~5.57 J cm?3 and a large η of ~85.6% are simultaneously realized in BaTiO3-based relaxor ceramics via multi-dimensional collaborative design, which are mainly attributed to the ferroelectric-relaxor transition, enhanced polarization, improved breakdown electric field, and delayed polarization saturation. Furthermore, the excellent temperature stability (ΔWrec < ± 5%, 25–140 °C), frequency stability (ΔWrec < ± 5%, 1–200 Hz), and outstanding charge/discharge performance (current density ~1583.3 A cm?2, power density ~190.0 MW cm?3) with good thermal stability are also achieved. It is encouraging that this work demonstrates that multi-dimensional collaborative design is a good strategy to develop new high-performance lead-free materials used in advanced dielectric capacitors.  相似文献   

19.
There are urgent demands for high performance capacitors with superior energy storage density and discharge performances. In this work, novel NaNbO3-based lead-free ceramics (0.91NaNbO3-0.09Bi(Zn0.5Ti0.5)O3) with high energy storage capability, high power density and fast discharge speed were designed and prepared. Bi(Zn0.5Ti0.5)O3 was chosen for the purpose to reduce the remnant polarization and improve the induced polarization. Consequently, a large stored energy storage density (Ws˜ 3.51 J/cm3) and high recoverable energy storage density (Wrec˜ 2.20 J/cm3) were obtained in 0.91NaNbO3-0.09Bi(Zn0.5Ti0.5)O3 ceramic under a high breakdown strength of 250 kV/cm, with excellent thermal stability in the range of 20–120 °C. More importantly, the investigated ceramics exhibited high power density (PD˜ 20 MW/cm3) and ultrafast discharge rate (t0.9˜ 0.25 μs), demonstrating potential application in pulse powehr systems. This work provides an effective means of achieving excellent energy storage and discharge performances in NaNbO3-based ceramics for application in dielectric capacitors.  相似文献   

20.
《Ceramics International》2022,48(17):24716-24724
Dielectric capacitors show great potential in superior energy storage devices. However, the energy density of these capacitors is still inadequate to meet the requirement of energy storage applications. In this study, the Bi0.5Na0.47Li0.03TiO3-xNaNbO3 (BNLT-xNN) ceramics were prepared via conventional solid-phase reaction. Results showed that NN can efficaciously enhance the breakdown strength (Eb) and the relaxation behavior of the BNLT ceramic because of the broken ferroelectric long-range order. When x = 0.3, the maximum Eb reached 350 kV/cm, at which the 0.7BNLT-0.3NN ceramic exhibited the high recoverable energy storage density (Wrec) of 4.83 J/cm3 and great efficiency (η) of 78.9%. The ceramic demonstrated good temperature stability at 20 °C-160 °C and excellent fatigue resistance. Additionally, the 0.7BNLT-0.3NN ceramic presented high power density (PD; ~77.58 MW/cm3), large current density (CD; ~861.99 A/cm2), and quite short discharge time (t0.9; ~0.090 μs). These results indicated that the 0.7BNLT-0.3NN material has excellent energy storage properties and various application prospects.  相似文献   

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