01574nam 2200433 n 450 99639068000331620221108101317.0(CKB)4940000000099821(EEBO)2240853818(UnM)9928197100971(UnM)99830487(EXLCZ)99494000000009982119950803d1682 uy |engurbn||||a|bb|Ancilla calligraphiæ or The handmaid to fair writing[electronic resource] being an essey [sic] of the pen and graver. Performed for private divertisment and to please some particular friends by Thomas Weston gent alij multa persiciunt nos nonnulla conamur[London s.n.1682?][29] leaves portImprint from Wing.Engraved throughout; some leaves variously signed, Jo. Sturt, Elder, R. White.First leaf = portrait of author.Reproduction of the original at the British Library.eebo-0018PenmanshipEarly works to 1800CopybooksEnglandEarly works to 1800PenmanshipCopybooksWeston Thomasgent.837713White Robert1645-1703,Sturt John1658-1730,Elder Williamfl. 1680-1700,Cu-RivESCu-RivESCStRLINWaOLNBOOK996390680003316Ancilla calligraphiæ or The handmaid to fair writing2380185UNISA04089nam 2201045z- 450 9910404091903321202102113-03928-643-9(CKB)4100000011302219(oapen)https://directory.doabooks.org/handle/20.500.12854/40264(oapen)doab40264(oapen)40264(EXLCZ)99410000001130221920202102d2020 |y 0engurmn|---annantxtrdacontentcrdamediacrrdacarrierAdvances in Electrochemical Energy MaterialsMDPI - Multidisciplinary Digital Publishing Institute20201 online resource (156 p.)3-03928-642-0 Electrochemical energy storage is becoming essential for portable electronics, electrified transportation, integration of intermittent renewable energy into grids, and many other energy and power applications. The electrode materials and their structures, in addition to the electrolytes, play key roles in supporting a multitude of coupled physicochemical processes that include electronic, ionic, and diffusive transport in electrode and electrolyte phases, electrochemical reactions and material phase changes, as well as mechanical and thermal stresses, thus determining the storage energy density and power density, conversion efficiency, performance lifetime, and system cost and safety. Different material chemistries and multiscale porous structures are being investigated for high performance and low cost. The aim of this Special Issue is to report the recent advances in materials used in electrochemical energy storage that encompass supercapacitors and rechargeable batteries.Research & information: generalbicssc0.5Li2MnO3·0.5LiMn0.8Ni0.1Co0.1O2AC filteringanode materialbiotemplatecarbon microfiberscarbon nanostructurescathode materialcathode materialsCo-dopingco-precipitation methodCr3+/Cr6+ redox pairscross-linked carbon nanofibercycling performanceelasto-plastic stresselectrochemical energy storageelectrochemical performanceelectrochemical propertieselectrode materialsenergy storage and conversiongarnetgreen synthesis routehigh-rate supercapacitorinductively-coupled plasmaLi ion batteryLi-rich layered oxideLi2MoO3LiFePO4/C compositelithium ion batterieslithium-ion batterieslithium-ion batterylithium-ion conductivitylithium-rich layered oxidematerial indexmechanical stabilitymethanolmicrostructureMn3O4nanostructurenanotubesparametric analysispulse power storagesol-gel methodsolid-state batteriessolid-state complexation methodsolid-state electrolytespecific capacitancespecific capacitysubmicron powdersulfidationsupercapacitorsthermal annealingvertical graphenevoltage attenuationvoltage decaywaterX-ray diffractionZIF-67zinc sulfideResearch & information: generalFan Zhaoyangauth1323731Li ShiqiauthBOOK9910404091903321Advances in Electrochemical Energy Materials3035786UNINA