Advanced electroanalytical chemistry at nanoelectrodes

In this perspective, we discuss the challenges, advances and opportunities in electroanalytical chemistry at nanoelectrodes, including nanoelectrode fabrication, real-time characterizations, and high-performance electrochemical instrumentation.


Introduction
Redox molecules are involved in a variety of charge transfer processes including cellular respiration, cell-to-cell communication, electrocatalysis, and energy conversion and storage. Most of these processes occur at the nanoscale, such as electron shuttles at the mitochondrial membrane 1 and at the nanointerface of functionalized nanomaterials. 2 A long-standing requirement in electrochemistry is to develop high spatial resolution and high sensitivity electrochemical techniques to better understand the mechanisms of charge transfer processes at the interface as well as to facilitate related applications. Recently, nanoelectrodes, with dimensions below 100 nm, are regarded as promising tools to study electrochemical processes at the nanoscale. 3 As the electrode dimensions decrease towards the nanoscale, their geometry becomes smaller than their diffusion lengths. Therefore, mass transport increases and the diffusion layer diminishes. Because radial diffusion becomes dominant, diffusion-limited current is used to describe redox reactions occurring at the nanoelectrode interface. 1 Moreover, the smaller RC (R ¼ resistance; C ¼ capacitance) time constant (s) of nanoelectrodes ensures their ability to study transient electrochemical reactions. 4 Because of their advantages, nanoelectrodes have been widely applied in the characterization of single nanoparticles/molecules, 5,6 the construction of ultrasensitive and non-invasive electrochemical probes for the detection Yi-Lun Ying received her PhD in analytical chemistry in 2014 aer studying at the East China University of Science and Technology (ECUST) in China and the University of Birmingham in the UK. Following postdoctoral research on nanopores and nanoelectrodes at ECUST, she joined Prof. Long's group as an associate professor to focus on nanospectroelectrochemistry for single-molecule studies and single cell analysis.
Zhifeng Ding is a full professor of chemistry at The University of Western Ontario, Canada. He received an honours B.Sc. degree at Southeast University, M.Sc. in coordination chemistry at Nanjing University, and earned his Ph.D. in physical and analytical electrochemistry at the Swiss Federal Institute of Technology in Lausanne. Aer 3 years of postdoctoral research at The University of Texas at Austin, he moved to Western as a faculty member. His research focuses on scanning electrochemical microscopy, ionic liquids as novel electrolytes, electrochemiluminescence and solar cells.
of a single living cell within its natural environment, 7 and incorporated with scanning electrochemical probe techniques to acquire highly resolved electrochemical imaging. 8,9 Although nanoelectrode research has achieved excellent progress during recent years, challenges still exist for reliable fabrication and characterization as well as in the development of related instrumentation. For electrochemical analysis at the nanoscale, the surface structure of the nanoelectrodes and their electronic effects must be considered, requiring a very delicate experimental design. If these issues are properly addressed, the understanding of the nanoelectrodes will be greatly improved and their related applications will be bolstered. In this perspective, we discuss the challenges and advances of electroanalytical chemistry at nanoelectrodes. We rst highlight typical fabrication methods and their challenges for well-dened nanoelectrodes. Then, we emphasize the characterization methods for nanoelectrodes. The great potential for the development of high bandwidth equipment for nanoelectrodes is also presented. In the last section, we briey describe the unique applications of nanoelectrodes in single-nanoparticle detection, single-molecule analysis and single-cell probing.

Fabrication of nanoelectrodes
The rst nanoelectrode was a nanoband electrode reported in 1985. 10 Thereaer, many types of nanoelectrodes have been reported with various geometries including inlaid disk, hemisphere, sphere, ring, conical, and nanopipette. [11][12][13][14][15][16][17][18][19] Four main approaches have been developed to fabricate nanoelectrodes. First, the nanoband electrode (Fig. 1A) 20 and electrode array were made by using bottom-up manufacturing technologies including photolithography, electron beam lithography (EBL) and focused ion beam (FIB) fabrication, 21 in which a metal layer was deposited on the top, bottom or sandwiched in-between the substrates. These methods could provide arrays or ensembles of nanoelectrodes. 22 For example, nanoelectrode arrays on nanochannel arrays with embedded annular nanoband electrodes were fabricated by FIB milling following a layer-by-layer deposition ( Fig. 1B-D).
For the second fabrication method, a needle-type nanoelectrode is fabricated by electrochemical etching of thin metal wires down to a cone shape (Fig. 1E) 3,[23][24][25] or ame-etching of carbon nanobres for carbon bre nanoelectrodes. [26][27][28][29] For the third approach, metallic layers are deposited onto the nanoporous polymeric membrane or nanopipette to fabricate the nanoelectrode. 5,15,18,[30][31][32][33][34] For example, a carbon nanoelectrode was fabricated by pyrolysis of a carbon source, such as methane, acetylene, and butane, inside capillaries. [35][36][37] Recently, chemical vapour deposition was used to facilitate the deposition of carbon inside the nanopipette (Fig. 1F-H). 38 Moreover, a nanoelectrode was fabricated by lling a nanocapillary with a Pt ring electrode, which was employed in determining intracellular glucose levels and sphingomyelinase activity. 18 A nanometric optical bre was also reported with a metallic coating followed by an insulated sheath of non-conducting polymer lms. [39][40][41] By using this approach, the dimensions of the nanoelectrode are templated by the pore-formed solid-state nanostructures. These nanoelectrodes can be integrated with electrochemical imaging systems, including scanning ion conductance microscopy (SICM) or optical microscopy techniques. Moreover, this strategy allows for the production of nanoelectrode ensembles. One of the rst reported nanoelectrode ensembles was fabricated by an electroless deposition procedure of lling the pores of nanoporous ltration membranes with gold nanowires. 42 As for the fourth fabrication approach, a laser-assisted wire pulling method was intensively studied to obtain an electrode with a nanoscale radius 43-45 even down to several nanometers 16,45 (Fig. 1I). Since this fabrication process takes only a few minutes to seal a commercially available metal wire, it has been widely applied to analyse single entities. 6,[46][47][48][49][50][51][52][53] In detail, a piece of solid metal wire with a diameter ranging between 10 and 100 mm is inserted into borosilicate or quartz glass capillaries and gently heated using the laser puller while applying a vacuum to the two ends of the capillary at the same time. This procedure induces the glass capillary to collapse concentrically, resulting Dongping Zhan graduated from Harbin Engineering University (BSc) and Wuhan University (PhD), China. Aer postdoctoral fellowships at Peking University, the University of Texas at Austin and Queens College at the City University of New York, he joined Xiamen University where he has been a full Professor since 2013. His interests are in electrochemistry at the nanoscale, including electrode process kinetics, ultramicroelectrodes and nanoelectrodes, scanning electrochemical microscopy, electrochemical micro-/nanomachining and precise electrochemical instruments.
Yi-Tao Long received his PhD in bioelectroanalytical chemistry from Nanjing University in 1998. Aer completing two years of postdoctoral study at Heidelberg University, he moved to Canada, and worked for ve years as a research scientist at the University of Saskatchewan and University of Alberta. Dr Long was appointed as a full Professor at ECUST in 2007 aer he worked in the Department of Bioengineering at UC Berkeley. His main research expertise involves nanopore single-molecule analysis, nanospectroscopy, spectroelectrochemistry, integrated biosensors and biointerphases.
in a tight enclosure of the micrometric wire within the capillary. In the second step, more heat is applied to strongly pull the capillary apart at the two ends while the dimensions of both the glass sheath and the metal wire reduce to the nanoscale. Then, two nearly identical nanoelectrodes are produced at a time. This method has been most commonly used to produce Pt electrodes and to fabricate Au and Ag nanoelectrodes. 44,54 Usually, a P-2000 Laser-Based Micropipette Puller (Sutter Instrument Co.) is used to achieve an effective pulling process. During the fabrication, the success of this method largely depends on the performance of a specic model of pipette puller. In addition, the experimental environment, including the temperature and humidity, also affects the performance of the pulling procedure. Aer removing excess glass from the tip by either chemical etching in HF or the electrode polishing procedure, the nanowire is fused in a coplanar and concentric glass insulator, but only the very end of the metal disk is exposed. The polishing procedure is usually operated by rotating the nanoelectrode on a polishing plate in polishing paper or in a drop of water (Fig. 1J). 45 The nal dimensions of the active nanoelectrode are largely determined by the chemical etching or polishing processes, which require very careful operation to avoid unnecessary defects or damage to the nanoelectrode. Even very gentle polishing could change the size and geometry of the nanoelectrode, leading to difficulty in replicating the nanoelectrochemical experiments. For example, a precession of the tip in a circle on the polishing papers was reported to depend on the electrode-to-polishing plate distance. 45 This conical polishing of the outer glass sheath can be adjusted by changing the angle between the rotation axis of the nanoelectrode and the surface of the polishing plate. Moreover, the following electrochemical measurements should follow precise handling. The unwanted nanometre-scale damage, including electrostatic discharge in the air or electrochemical etching in an electrolyte solution, could induce an inability of current response for the nanoelectrode. 55 To ensure the sufficient mechanical stability for mechanical polishing, an extended method is developed to insert the pulled nanoelectrode into a second capillary. 16 Subsequently, this sandwich structure is then pulled again so that the nal prepared nanoelectrode is surrounded by a thicker insulating sheath. Moreover, a laser-assisted pipette puller could also be used to fabricate pulled nanopipettes which have been widely used in electrochemical research including for fundamental electrochemical measurements, versatile probes for in situ scanning probe microscopy and samplers for ultrasmall volumes. [56][57][58][59][60] Despite tremendous improvements in the fabrication of nanoelectrodes in past decades, challenges still exist to reproducibly, massively produce well-dened nanoelectrodes with controllable geometries and low costs. More importantly, the cleaning of the nanoelectrode surface is difficult because of its small size and extreme fragility in contrast to macroscopic and micrometre-sized electrodes whose surfaces can be reproducibly cleaned by mechanical polishing. A recent study showed the possibility of non-destructively removing an insoluble organic lm from nanoelectrode surfaces using an air plasma cleaner. 44 This method provides an optimized experimental operation for achieving high reproducibility for nanoelectrodes. Therefore, the development of an easy fabrication strategy along with advanced electrochemical experimental protocols is an urgent requirement for further promoting the highly sensitive applications of nanoelectrodes.

Characterization of nanoelectrodes
The electrochemical performance of nanoelectrodes is extremely sensitive to even small variations in the electrode geometry as well as in the insulating shroud surrounding the electrode. These issues determine the mass transport of the electrode reactant, responding to the proper explanation for the recorded current curve. 61,62 For example, the steady-state limiting current of a recessed nanoelectrode is smaller than that of a disk nanoelectrode of the same size due to its additional mass-transport resistance. 63 Usually, by analysing the mass-transport-controlled limiting current (i l ) from the electrochemical method, one can obtain a quick estimate of the size of a nanoelectrode. The value of i l is measured from the plateau region of the sigmoidal steady-state voltammogram. The effective electrochemical radius of a hemispherical nanoelectrode could be investigated by using eqn (1), which is based on an assumption about its geometry. 64 where F is Faraday's constant, n is the number of electrons transferred in the reaction, D is the diffusion coefficient of the reactant (centimetres squared per second), c* is the bulk concentration of the reactant (moles per cubic centimetre), and r app is the apparent electrochemical radius (centimetres). Because eqn (1) originates from conventional diffusion theory, it empirically characterizes the apparent electrochemical radius of a nanoelectrode. However, this equation hardly estimates the radius of the nanoelectrode because the nanoelectrode is not a hemisphere. Thus, using eqn (1) would result in an underestimated or overestimated value of r. The equation for an inlaid disk electrode and recessed electrode are shown as follows: To characterize the truncated conical-shaped glass nanopore electrode, an approximate expression for its diffusion-limited steady-state current is given by eqn (4): 63 where a is the diameter of the pore, d is the pore depth and q is the half-cone angle of the pore. It should be noted that the steady-state current formula is inapplicable for the diameter estimation of the nanoelectrode if the electrode morphology is uncertain. Recently, tremendous efforts made to revise the appropriate models for nanoelectrodes, which involve the consideration of a dynamic electrochemical double layer 65,66 and discussion of the size-dependence of the electron transfer rates. 54 Moreover, scanning electrochemical microscopy (SECM) has been applied to characterize the shape of the nanoelectrodes based on the use of approach curves. 67,68 In this experiment, a nanoelectrode is gradually moved closer to a surface in a solution containing electroactive species. At the applied potential, the current acquired from the moving nanoelectrode depends not only on the conductivity of the surface but also on the shape of the approaching nanoelectrode. By comparing the shape of this current-distance curve with those from the theoretical calculations, the shape of the nanoelectrode is revealed. 68,69 It is important to note that the tip of the nanoelectrode should be within a one or two tip radius distance from the substrate. 70 To clearly visualize the dimensions of the nanoelectrodes, electron microscopy is used to characterize the nanoelectrode. The conventional tungsten-lament SEM images demonstrate the ability to characterize electrodes having a radius larger than $50 nm. Field-emission SEM can provide a high spatial resolution below 10 nm ( Fig. 2A), 55 which highly depends on the conductance of the nanoelectrode as well as the skill of the operator. Because the high-energy electrons used in TEM hardly penetrate the thick insulating ($mm) shroud surrounding the electrode, it is difficult to obtain a clear TEM image of the nanoelectrode. 71 A previous study shows TEM imaging of a Pt nanoelectrode with overall dimensions smaller than the submicrometre scale ( Fig. 2B and C). 16 Although electron microscopy provides the shape and size of a nanoelectrode, there are still obstacles for imaging one tiny nanoelectrode with a radius below 10 nm, much less a massive characterization of capillarysealed nanoelectrodes. More importantly, it is necessary to uncover the topography of the nanoelectrodes during their operation in solution. Recently, an in situ AFM technique was applied to show the recession of an Au nanoelectrode surface into glass aer low-temperature annealing. 72 As illustrated in Fig. 2D and E, a 28 nm radius Pt nanoelectrode has a recess depth of $40 nm. 72 Furthermore, the non-contact AFM image illustrates the cracks in the insulating sheath of nanoelectrode, which may result in solution leakage. 72 It seems that AFM could be used to characterize the nanoelectrode geometry and surface reactivity in solution. However, if the diameter of the electrode wire is on the order of the AFM tip curvature, it is difficult to distinguish between the contribution of the nanoelectrode and the tip itself. In this case, AFM images are more prone to imaging artefacts rather than a true image of a recessed electrode.
Although a variety of methods have been developed to assess electrode geometries at the nanoscale, nearly none of the presented techniques could provide a comprehensive and real-time picture of the nanoelectrode during its measurements. The question remains of the relationship among the current response of the nanoelectrodes with the real geometry, and the surface absorption and charges for the nanoelectrode during the electrochemical measurements. More effort needs to be directed toward developing novel in situ high-resolution characterization methods.

High performance electrochemical instrumentation
Because the double layer capacitances are proportional to the electrode area, the greatly reduced surface area of nanoelectrodes results in electrochemical cells with small RCs. This feature enables the nanoelectrodes to acquire the transient current responses. Note that the effective value of s for the nanoelectrode is dominated by stray capacitances (C stray ) from the electrochemical cell and the electronic board of the current amplier rather than the electrode capacitance itself. 4 Therefore, it is important to improve the electronic board of the amplier and to fabricate the electrochemical cells in a way that minimizes C stray .
The current response of the nanoelectrodes is typically in the nanoampere to picoampere range, which largely depends on the size of the electrode. Therefore, a high bandwidth system with high gain is essential to amplify the ultra-low current for further recording. 73 The trans-impedance amplier (TIA) used for processing the current signal should have an ultra-low input bias current (usually <1 pA) to ensure high-resolution results (Fig. 3A). The input current noise is an important parameter for the amplier because the noise could be signicantly amplied aer the current signal is transferred to a voltage signal by the TIA. The noise during the measurement is a result of contributions from the electrode and its associated connections. To evaluate the current uctuation in nanoelectrode systems, the current-power spectral density, which illustrates the currentpower distribution over frequency, could be calculated. Generally, the noise spectrum in nanoelectrode systems is divided into a low-frequency regime and a high frequency regime; whereas, the low-frequency noise includes icker noise (1/f) and thermal noise. The high-frequency noise depends on the capacitance of nanoelectrode, etc.
To measure the small and transient current signals accurately, high performance electrochemical instrumentation is  During experiments, the bias voltage is set by applying a reference voltage to the non-inverting input of the trans-impedance amplifier (TIA). The current signal is transferred to a voltage signal through the TIA. Then, a unity gain differential amplifier is used to deduct the reference voltage from the signal. To lower the noise, a low-pass filter is always used before the signal is transferred to the digital signal by the analogto-digital convertor (ADC). (B) Chronoamperometric curves of single 4-mercaptobenzene-1,2-diol@AuNP collisions on a carbon-fibre ultramicroelectrode (UME) recorded at a filter frequency of 1 kHz, 2 kHz and 5 kHz, respectively. The experiments were carried out in a 15 mM phosphate buffer (pH 7.0) containing 5 mM NADH. 74  desirable with high temporal and current resolution. Otherwise, the recording signal will be deformed by a low bandwidth amplier, inducing a misleading experimental result. For example, as shown in Fig. 3B, the i-t response generated from a single functionalized nanoparticle collision was apparently affected by the lter frequency setting of the amplier. 74 As the lter frequency decreased from 5 kHz to 1 kHz, the peak current decreased evidently as the duration increased. Recording in the lower bandwidth leads to an obvious change in the shape of the current response.
Normally, current transients are mainly attenuated by the low-pass lter as the lter controls the bandwidth of the amplier. Blockades with durations shorter than twice the lter's rise time (2T r ) are prevented from reaching their real maximums. The T r of a lter can be estimated by where f c is the cut-off frequency of the lter. For the 1 kHz, 2 kHz and 5 kHz low-pass lters, the value of 2T r is 0.66, 0.33 and 0.13 ms, respectively. To accurately resolve the current response from the nanoelectrode, the T r of the amplier should be less than the half duration of the signal. Because the low-pass lter suppresses only the highfrequency noise, the low-frequency noise and noise from the analog-digital converter are still mixed in the recorded current trace. Thus, the existing noise makes it difficult to accurately evaluate each individual current response, especially when studying single entity analysis. Therefore, robust data processes that include locating events as well as evaluating both the duration and the current amplitude should be further developed to provide an accurate analysis of events in nanoelectrode experiments. To achieve this, a true shape of the current response should be well understood. As described by a simple model 75 for a single nanoparticle collision at the nanoelectrode, the current across the nanoparticle could be regarded as a function of its distance from the electrode surface. Therefore, the true shape for a current spike should be rectangular because the binary current response switches between zero and the limiting current. Considering this model, the recovering of a seriously distorted collision spike could be carried out using full-width-half-maximum (FWHM) methods, the slope of the event or the area of the event, as indicated in previous studies of transient current responses. [76][77][78][79][80][81] Given the dynamic redox process at the nanoelectrode, 82 the true conditions for the single entity analysis are more complicated than this simple model. Therefore, the efficiency of the data evaluation process needs to be continuously explored.

Applications of nanoelectrodes
Here, we briey describe nanoelectrode applications in analysing single nanoparticles, studying single molecules and investigating single cells. For a detailed summary of the nanoelectrode applications, we refer the reader to recent excellent reviews including but not limited to ref. 5, 7, 21, 71, 83 and 84.

Single nanoparticles
Electrochemical monitoring of single nanoparticle collisions provides detailed information about the nanoparticles including their size, concentration, shapes and diffusion coefficients. [85][86][87] The electrochemical measurements of single nanoparticles were performed in both immobilization and nanocollision strategies. [88][89][90][91] For example, single Pt nanoparticles were electrodeposited on carbon nanoelectrodes to readily study the effect of an ultra-high mass-transfer rate for the reduction of oxygen. 92 As shown in Fig. 4A, a $15 nm Au nanoparticle was immobilized on a $10 nm Pt nanoelectrode, which was used to study the size-dependent electrocatalytic activity at the single-nanoparticle level. 48 The results show that the steady-state limiting current increased with the size of the Au nanoparticle ranging from 14, 18 and 24 nm, while the half-wave potential shied to a higher potential (Fig. 4B). The study of the electrocatalytic activity at a single Au nanoparticle has also been demonstrated on Pt nanoelectrodes with diameters as small as 2 nm. 16 Recently, a carbon nanoelectrode was used to measure catalytic currents at a single 10 nm gold nanoparticle and at atomic gold clusters ( Fig. 4C and D). 93 The rst experiment for a stochastic single-nanoparticle collision was achieved on an UME. 87 Each collision produced a characteristic current signature that is related to the particle size, the particle residence time, and the particle interactions with the electrode surface. Later, the nanoelectrode was applied in a single nanoparticle collision experiment as a highly sensitive electroanalytical tool. This method has been widely used to study a wide range of nanoparticles from "hard particles", such as AgNPs, 94 to "so particles", such as transmitter vesicles 95 (Fig. 4C). Furthermore, the single nanoparticle landing experiments have been carried out using a scanning electrochemical cell microscopy (SECCM) conguration, 96-98 which ensures a time-resolved detection of the formation of a surface oxide at individual gold nanoparticles. 73 However, it should be noted that the destructive metal nanoparticle collision towards nanoelectrode/UME undergo complex electrochemical reactions rather than a one-step simple oxidation during the potentiostatic experiment. 82,[99][100][101] As shown in Fig. 4E, the current responses from the individual 80 nm AgNP collisions on the Au UME show a spike with undulating terrain or multi-spikes. The duration of the rst spike of spike cluster in Fig. 4E(ii and iii) is consistent with the time scale of a single encounter, while the whole duration of the event cluster extends to tens of milliseconds. This result is attributed to a series of partially oxidized stages of a AgNP. 82 Therefore, the complex motion trajectories of the individual nanoparticles should be seriously considered before further applications in the single nanoparticle electrochemical impacts eld.

Single molecules
The electrochemical detection of a single molecule measures the small electrical current response corresponding to singlemolecule redox cycling. [102][103][104][105][106][107][108][109][110] It uncovers the internal reaction processes, tracing the intermediate and revealing the dynamics of a single molecule. The rst single-molecule electrochemistry study was achieved by trapping single molecules in a 10 nm-thick gap between a conductive substrate and a Pt-Ir nanoelectrode tip. 110 To analyse the small numbers of a redox-active enzyme, a [NiFe]-hydrogenase lm-Au nanoelectrode was fabricated to acquire a distinct catalytic response from less than 50 enzyme molecules. 46 Recently, a modied Au nanoelectrode demonstrated the efficiency of studying a single horseradish hydroperoxidase (HRP) based on stochastic nanocollision methods. 6 To biomimic the hydrophobic environment of HRP, a standing bilayer lipid membrane (BLM) was formed spontaneously on the nanoelectrode (Fig. 5A). When HRP collides into the BLM-Au electrode, the HRP-catalysed hydroperoxide reduction generates a staircase current response at the electrode. An estimation of the results reveals that 12 nm Au (Fig. 5B) shows that BLM-modied Au nanoelectrodes provide a good communication pathway between HRPs and the nanoelectrode, which can accommodate 15HRP molecules. Based on the collision events, the turnover number of HRP is calculated to be as high as $10 6 s À1 .

Single living cells
Electrochemical techniques are powerful tools for analysing an individual cells' dynamic redox metabolism because they provide a direct correlation between the signals and electroactive substances in the cells. To achieve the electrochemical detection of a single living cell within its natural environment, the dimensions of the electrodes should be reduced to minimize the mechanical damage to a cell. 7,111-115 More importantly, the nanoelectrode ensures a high spatial resolution since it can be positioned in different parts of the cell. The results from the nanoelectrodes reect the amount of reactive oxygen species (ROS) and reactive nitrogen species (RNS) inside the macrophages. 115 Moreover, nanoelectrodes demonstrate valuable advantages in probing neurotransmitters, most of which are electroactive compounds. A ameetched carbon bre nanotip electrode was used to electrochemically measure the total content of electroactive catecholamine in individual nanoscale vesicles in single PC12 cells (Fig. 6A). 95 The results from the single vesicle collisions with the electrode from inside the cell show that only a fraction of the quantal neurotransmitter content is released during exocytosis. Also, the small dimensions of a carbon bre nanoelectrode allow for sliding between two neurons membranes, which offers an efficient tool for better understanding of synaptic communication. 116 Recently, a hollow Pt nanoelectrode was fabricated for lling with components from traditional kits. As a nanoelectrode inserts into a single cell, the components of the kit react with the analyte to generate hydrogen peroxide for the electrochemical measurement. This nanoelectrode-based nanokit was able to determine the intracellular glucose and sphingomyelinase activity (Fig. 6B-D). 18

Conclusions and prospective
Recent achievements in the fabrication, characterization and electrochemical instrumentation of nanoelectrodes have dramatically increased their implementation in novel and practical electroanalytical methods. 6,95,115,[117][118][119][120] However, more effort is still needed to fabricate high-yield and highly reproducible nanoelectrodes with simple nanofabrication processes. Recent studies show that the thickness and morphology of the surrounding insulator can also have a dramatic impact on the diffusion-limited steady-state current of the nanoelectrodes. 1,121 Therefore, it is necessary to develop new nanoelectrodes with well-dened structures. Taking the advantage of the dened size of the solid-state nanopore with diameter ranging from sub 2 nm to 50 nm, 122 one could expect that the nanopore wireless electrode should hold the promising application in nanoscale electrochemistry. Moreover, in situ characterization methods that contribute to the understanding of the correlation between theoretical models and the nanostructure of the electrode, including size, geometry and the materials properties for both the electrode and the surrounding insulator, should be established. The complicated electrochemical processes of the nanoelectrodes will be understood through the continued exploration of the integration of the electrochemical platform with other techniques such as surface plasmon resonance (SPR), localised surface plasmon resonance (LSPR), uorescence microscopy, surface-enhanced Raman scattering (SERS) and mass spectrometry. [123][124][125][126] It should be noted that the limitations of low-bandwidth electrochemical instrumentation hinder the use of nanoelectrodes for the sophisticated study of single molecules and single nanoparticles. In the future, applying and developing high-performance electrochemical instrumentation, as well as related data processing methods, will bolster the further application of nanoelectrodes. For rapidly growing single entity analysis using nanoelectrodes, more research will contribute to a deeper understanding of the structure-activity correlation of each single entity across a variety of chemical/physical transformations.