Progress in Rechargeable Aqueous Alkali-Ion Batteries in China

Author(s):  
Jinming Yue ◽  
Liumin Suo
Keyword(s):  
2020 ◽  
Vol 8 (40) ◽  
pp. 21103-21109
Author(s):  
Kunjie Zhu ◽  
Zhaopeng Li ◽  
Ting Jin ◽  
Lifang Jiao

Aqueous alkali ion batteries attract increasing attention due to their merits of being safety, eco-friendly and low cost.


1963 ◽  
Vol 44 (1) ◽  
pp. 47-66 ◽  
Author(s):  
W. Nocke ◽  
H. Breuer

ABSTRACT A method for the chemical determination of 16-epi-oestriol in the urine of nonpregnant women with a qualitative sensitivity of less than 0.5 μg/24 h is described. The separation of 16-epi-oestriol and oestriol is accomplished by converting 16-epi-oestriol into its acetonide, a reaction which is stereoselective for cis-glycols and therefore not undergone by oestriol as a trans-glycol. Following partition between chloroform and aqueous alkali, the acetonide of 16-epi-oestriol is completely separated with the organic layer whereas oestriol as a strong phenol remains in the alkaline phase. 16-epi-oestriol is chromatographed on alumina as the acetonide and determined as a Kober chromogen. This procedure can easily be incorporated into the method of Brown et al. (1957 b) thus making possible the simultaneous routine assay of oestradiol-17β, oestrone, oestriol and 16-epi-oestriol from one sample of urine. The specificity of the method was established by separation of 16-epi-oestriol from nonpregnancy urine as the acetonide, hydrolysis of the acetonide by phosphoric acid, isolation of the free compound by microsublimation and identification by micro melting point, colour reactions and chromatography. The accuracy of the method is given by a mean recovery of 64% for pure crystalline 16-epi-oestriol when added to hydrolysed urine in 5–10 μg amounts. The precision is given by s = 0.24 μg/24 h. For the duplicate determination of 16-epi-oestriol the qualitative sensitivity is 0.44 μg/24 h, the maximum percentage error being ± 100% The quantitative sensitivity (±25% error) is 1.7 μg/24 h.


1990 ◽  
Vol 55 (5) ◽  
pp. 1149-1161
Author(s):  
Jiří Závada ◽  
Václav Pechanec ◽  
Oldřich Kocián

A powerful anion effect destabilizing alkali ion-crown complex formation has been found to operate in moderately concentrated protic (H2O, CH3OH, C2H5OH) solution, following the order HO- > AcO- > Cl- > Br- > NO3- > I- > NCS-. Evidence is provided that the observed effect does not originate from ion-pairing. A simple explanation is provided in terms of concordant hydrogen bond bridges of exalted stability between the gegenions, M+···OR-H···(OR-H)n···OR-H···A-. It is proposed that encapsulation of alkali ion by the macrocyclic ligand leads to a dissipation of the cation charge density destroying its ability to participate in the hydrogen bond bridge. An opposition against the alkali ion-crown complex formation arises accordingly in the solution in dependence on strength of the hydrogen bridge; for a given cation, the hydrogen bond strength increases with increasing anion charge density from NCS- to HO-(RO-). It is pointed out, at the same time, that the observed anion effect does not correlate with the known values of activity coefficients of the individual alkali salts which are almost insensitive to anion variation under the investigated conditions. As a resolution of the apparent paradoxon it is proposed that, in absence of the macrocyclic ligand, the stabilizing (concordant) bonding between the gegenions is nearly balanced by a destabilizing (discordant) hydrogen bonding between the ions of same charge (co-ions). Intrinsic differences among the individual salts are thus submerged in protic solvents and become apparent only when the concordant bonding is suppressed in the alkali ion-crown complex formation.


Author(s):  
Conrad H. R. Gillard ◽  
Xiuquan Zhou ◽  
Maxim Avdeev ◽  
Efrain E. Rodriguez ◽  
Neeraj Sharma
Keyword(s):  

2021 ◽  
pp. 122241
Author(s):  
Conrad Gillard ◽  
Kathleen Djohari ◽  
Partha Pratim Jana ◽  
Maxim Avdeev ◽  
Neeraj Sharma

2021 ◽  
Vol 24 ◽  
pp. 101036
Author(s):  
Gladys W. King'ori ◽  
Cecil N M Ouma ◽  
George O. Amolo ◽  
Nicholas W. Makau

Small ◽  
2020 ◽  
Vol 16 (10) ◽  
pp. 1907365 ◽  
Author(s):  
Chaofan Yang ◽  
Chong Qiao ◽  
Yang Chen ◽  
Xueqi Zhao ◽  
Lulu Wu ◽  
...  

RSC Advances ◽  
2020 ◽  
Vol 10 (50) ◽  
pp. 30127-30138
Author(s):  
Gladys W. King'ori ◽  
Cecil N. M. Ouma ◽  
Abhishek K. Mishra ◽  
George O. Amolo ◽  
Nicholas W. Makau

A high rate capacity, moderate volume expansion and energetically stable alkali ion graphene–HfS2 electrode material.


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