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1 eaction with the active-site serine using an ion selective electrode.
2 interference, which was overcome by specific ion selective electrode.
3 s turnover by P4H, is detected by a fluoride ion-selective electrode.
4 lymeric mixed-matrix membrane and used as an ion-selective electrode.
5 embrane, which was then used to fabricate an ion-selective electrode.
6 epithelial cell monolayer monitored with an ion-selective electrode.
7 ed as a material for clinical containers and ion-selective electrodes.
8 and Ca2+ flux adjacent to the membrane with ion-selective electrodes.
9 candidate for the fabrication of implantable ion-selective electrodes.
10 poly(vinyl chloride) and decyl methacrylate ion-selective electrodes.
11 re synthesized as ion-selective reagents for ion-selective electrodes.
12 ogy has a profound effect on the behavior of ion-selective electrodes.
13 calation is important for the development of ion-selective electrodes.
14 nting approach to manufacture potentiometric ion-selective electrodes.
15 bon nanotubes to yield transducer layers for ion-selective electrodes.
16 ctive for mass production of all-solid state ion-selective electrodes.
17 , there is still a lack in the production of ion-selective electrodes.
18 urposely different from common practice with ion-selective electrodes.
19 tammetry, and free Cu(2+) was measured using ion-selective electrodes.
20 termine unbiased selectivity coefficients of ion-selective electrodes.
21 so far not found their way into the field of ion-selective electrodes.
22 which are then used as a substrate to build ion-selective electrodes.
23 t obtained for the more conventional type of ion-selective-electrodes.
25 emical microscope with an amperometric Ag(+) ion-selective electrode (Ag(+)-ISE) and the respiration
26 assay uses a low-volume solid-contact silver ion-selective electrode (Ag(+)-ISE) to monitor the deple
27 d at the lower/sensitive end of the ammonium ion selective electrode (AISE) with O-ring and then elec
28 us sensing approaches such as potentiometric ion selective electrodes and amperometric enzymatic sens
29 red by CLE-SPE with those measured by copper-ion-selective electrode and voltammetry demonstrates tha
30 that bridge the detection windows of copper-ion-selective electrode and voltammetry measurements.
31 h to a problem that has plagued the field of ion-selective electrodes and field effect transistors fo
32 me and memory effects of low-detection-limit ion-selective electrodes and for other membrane electrod
34 agreement with titration data obtained using ion-selective electrodes and mobility data obtained usin
35 The traditional cation exchangers used in ion-selective electrodes and optodes are tetraphenylbora
36 s is high compared to solid sensors, such as ion-selective electrodes and optodes; and (3) the sensin
37 of the ion activity, in complete analogy to ion-selective electrodes, and multiple such waves are ob
40 tramethyl ammonium (TMA), each with specific ion-selective electrodes, as well as by measurement of e
41 o polyvinyl chloride membranes and tested as ion selective electrodes at pH 6.6, whereas near-equal s
43 r is crucial, thus newly synthesized Al(III) ion selective electrode based on innocuous reagent, flub
44 nophores in the development of solid-contact ion-selective electrodes based on conducting polymer pol
45 e instrumental control of polymeric membrane ion-selective electrodes based on electrochemically indu
46 with the upper detection limit observed for ion-selective electrodes based on the ionophores valinom
47 ith membranes incorporated into conventional ion-selective electrode bodies or cast onto microfabrica
48 ly reproducible solid contact potentiometric ion-selective electrodes, but are not restricted to them
49 e development of highly sensitive and robust ion selective electrodes capable of in situ measurements
50 al and imaging techniques, such as vibrating ion-selective electrodes, carbon fiber amperometry, and
51 ansistor (ISFET) pH electrodes, and Chloride-Ion Selective Electrodes (Cl-ISE) directly exposed to th
54 The indicator electrode was a membrane-based ion-selective electrode containing a receptor for hydrog
56 valently attaching heparin on the surface of ion-selective electrodes, electrodes with improved blood
57 er was coupled with a solid-contact fluoride ion-selective electrode (F-ISE) transducer, for potentio
59 l characterization and validation of a novel ion-selective electrode for the highly sensitive and sel
60 st fully 3D-printed (3Dp) solid-contact (SC) ion-selective electrode for use in potentiometric sensin
61 ently been introduced to replace traditional ion-selective electrodes for a number of applications.
64 ements using non-conditioned all-solid-state ion-selective electrodes for the detection of nitrate an
67 ective optodes (ISOs), the optical analog of ion-selective electrodes, have played an increasingly im
69 ochemical cell composed of several identical ion-selective electrodes immersed into separate sample s
70 ditioning refers to the equilibration of the ion-selective electrode in an aqueous solution before th
71 tant for its application as solid contact in ion-selective electrodes, including high: electronic con
72 potentiometric performance of membrane-based ion-selective electrodes incorporating this ionophore wa
73 ium (NH4+), measured as NH4-N loads using an ion-selective electrode installed at the inlet of a sewa
74 new family of passive/active all-solid-state ion selective electrodes interrogated by a current pulse
76 , the surface of calcium-selective polymeric ion-selective electrodes is coated with polyelectrolyte
77 novel solid contact type for all-solid-state ion-selective electrodes is introduced, yielding high st
80 hed transducer materials for all-solid-state ion-selective electrodes is proposed; it is based on the
83 Sophisticated laboratory grade tools such as ion selective electrodes (ISE) and portable spectrophoto
84 creen-printing can be used for solid contact ion selective electrodes (ISE) realization; these, howev
85 cromolar, and millimolar-when using the same ion-selective electrode (ISE) but interrogated under var
87 It is well known that the selectivity of an ion-selective electrode (ISE) depends on the stoichiomet
88 re, for which a wearable potentiometry-based ion-selective electrode (ISE) has attracted increasing a
90 tric sensor array that is self-powered by an ion-selective electrode (ISE) in a short-circuited cell
91 eparation step for fluoride determination by ion-selective electrode (ISE) in leguminous seeds and oi
94 hibit excellent selectivity for silver ions, ion-selective electrode (ISE) membranes were optimized a
96 y(3-octylthiophene) (POT) solid-contact (SC) ion-selective electrode (ISE) polymeric membrane has bee
102 A new kind of potentiometric chip sensor for ion-selective electrodes (ISE) based on a solvent polyme
108 Selectivities of solvent polymeric membrane ion-selective electrodes (ISEs) are quantitatively relat
112 readout of a potentiometric sensor array of ion-selective electrodes (ISEs) based on PVC membranes i
113 come possible to increase the sensitivity of ion-selective electrodes (ISEs) by imposing a constant c
114 optimization of the lower detection limit of ion-selective electrodes (ISEs) can be assessed with an
116 ) system based on an array of potentiometric ion-selective electrodes (ISEs) for the discrimination o
119 The selectivity coefficients, KIJpot, of ion-selective electrodes (ISEs) have been fundamentally
123 rent ion fluxes through polymer membranes of ion-selective electrodes (ISEs) may lead to biased endpo
126 ducting polymer-based solid contact (SC) for ion-selective electrodes (ISEs) that could become the ul
129 improving the sensor lifetime, solid-contact ion-selective electrodes (ISEs) were prepared with a pla
131 y(vinyl chloride)-based membranes to develop ion-selective electrodes (ISEs) with enhanced blood comp
133 hilic salen derivatives were used to prepare ion-selective electrodes (ISEs) with ionophore-doped flu
134 for the development of a range of polymeric ion-selective electrodes (ISEs) with low detection limit
135 ulsed galvanostatic technique to interrogate ion-selective electrodes (ISEs) with no intrinsic ion-ex
136 ic membranes have been the main reason early ion-selective electrodes (ISEs) without added ion exchan
137 d widely as solid-contact (SC) materials for ion-selective electrodes (ISEs), as their high nonfarada
138 -based (PEDOT(PSS)-based) solid contact (SC) ion-selective electrodes (ISEs), the surfaces of Pt, Au,
139 its the reliability of the signal readout of ion-selective electrodes (ISEs), thereby limiting their
148 closed using Raman spectroscopy and fluoride ion selective electrode measurements for experiments per
150 nsor material incorporated in liquid type of ion-selective electrode membrane for TBZ determination.
152 per detection limit of polar ionophore-based ion-selective electrode membranes is predicted by utiliz
154 analyzers measure electrolytes via different ion-selective electrode methodology, that is, direct and
160 wn that electrochemical signals recorded for ion-selective electrodes operating under voltammetric/co
161 transduction of electrochemical responses of ion-selective electrodes, operating under non-zero-curre
162 o establish symmetry, a set of solid-contact ion-selective electrodes placed in a reference cell is m
163 experimental results and contrasts to common ion-selective electrode practice, where a salt of the an
168 One roadblock for LTCM using solid-state ion-selective electrode (S-ISE) sensors is biofouling on
171 otential capacitive readout of solid-contact ion-selective electrodes (SC-ISE) allows one to obtain e
173 signal transduction concerning solid-contact ion-selective electrodes (SC-ISE) with a conducting poly
174 mmonly used in solid-contact and coated-wire ion-selective electrodes (SC-ISEs and CWEs) was quantifi
175 s in lakes with potentiometric solid-contact ion-selective electrodes (SC-ISEs) and a data processing
179 ibility of the emf response of solid contact ion-selective electrodes (SC-ISEs) requires a precise co
180 the CIM carbon solid contact, solid-contact ion-selective electrodes (SC-ISEs) with a standard devia
181 lished its utility in cationic solid-contact ion-selective electrodes (sc-ISEs), its anionic counterp
183 e for the commercialization of solid-contact ion-selective electrodes (SCISEs) as single-use or weara
186 The ionophore was incorporated into a planar ion-selective electrode sensor format and the selectivit
189 A new type of potentiometric solid-state ion-selective electrode (SS-ISE) has been fabricated wit
193 opment of a chronopotentiometric readout for ion-selective electrodes that allows one to record trans
195 all the current challenges in inkjet-printed ion-selective electrodes, this different fabrication app
197 d the novel approach based on a voltammetric ion-selective electrode to enable the electrochemical de
198 chelates shift the potential of the fluoride ion-selective electrode to more positive stable potentia
199 s with low detection limits and voltammetric ion-selective electrodes, to increase operational lifeti
200 ility of potential readings of the resulting ion-selective electrodes together with good reproducibil
201 lts were compared with classical solid-state ion selective electrodes using carbon nanotubes as trans
202 first time, a single-piece, all-solid-state ion-selective electrode was fabricated with carbon black
204 potassium, calcium, hydrogen, and carbonate ion-selective electrodes, which all exhibit the high sel
205 f solid-contact galvanostatically controlled ion-selective electrodes with a conducting polymer as a
206 ionophore used in PVC or decyl methacrylate ion-selective electrodes, with minor adjustments to acco
207 to perform rapid localized pH titrations at ion-selective electrodes without the need for volumetric