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<article article-type="research-article" dtd-version="1.1" specific-use="sps-1.9" xml:lang="en"
	xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">
	<front>
		<journal-meta>
			<journal-id journal-id-type="publisher-id">sv</journal-id>
			<journal-title-group>
				<journal-title>Superficies y vacío</journal-title>
				<abbrev-journal-title abbrev-type="publisher">Superf. vacío</abbrev-journal-title>
			</journal-title-group>
			<issn pub-type="ppub">1665-3521</issn>
			<publisher>
				<publisher-name>Sociedad Mexicana de Ciencia y Tecnología de Superficies y
					Materiales A.C.</publisher-name>
			</publisher>
		</journal-meta>
		<article-meta>
			<article-id pub-id-type="publisher-id">00002</article-id>
			<article-categories>
				<subj-group subj-group-type="heading">
					<subject>Research Papers</subject>
				</subj-group>
			</article-categories>
			<title-group>
				<article-title>Implementation of the Z-scan technique using NI cRIO 9074
					system</article-title>
			</title-group>
			<contrib-group>
				<contrib contrib-type="author">
					<name>
						<surname>Gutiérrez Fuentes</surname>
						<given-names>R.</given-names>
					</name>
					<xref ref-type="aff" rid="aff1"><sup>1</sup></xref>
					<xref ref-type="aff" rid="aff2"><sup>
							<italic>β</italic>
						</sup></xref>
					<xref ref-type="corresp" rid="c1">*</xref>
				</contrib>
				<contrib contrib-type="author">
					<name>
						<surname>Camacho López</surname>
						<given-names>M.A.</given-names>
					</name>
					<xref ref-type="aff" rid="aff1"><sup>1</sup></xref>
				</contrib>
				<contrib contrib-type="author">
					<name>
						<surname>Jiménez Pérez</surname>
						<given-names>J.L.</given-names>
					</name>
					<xref ref-type="aff" rid="aff3"><sup>3</sup></xref>
				</contrib>
				<contrib contrib-type="author">
					<name>
						<surname>Correa Pacheco</surname>
						<given-names>Z.N.</given-names>
					</name>
					<xref ref-type="aff" rid="aff4"><sup>4</sup></xref>
				</contrib>
			</contrib-group>
			<aff id="aff1">
				<label>1</label>
				<institution content-type="original">Laboratorio de Fotomedicina, Biofotónica y
					Espectroscopia Láser de Pulsos Ultracortos, Facultad de Medicina, Universidad
					Autónoma del Estado de México, Toluca, Edo. Mex., 50120, México.</institution>
				<institution content-type="normalized">Universidad Autónoma del Estado de
					México</institution>
				<institution content-type="orgdiv2">Laboratorio de Fotomedicina, Biofotónica y
					Espectroscopia Láser de Pulsos Ultracortos</institution>
				<institution content-type="orgdiv1">Facultad de Medicina</institution>
				<institution content-type="orgname">Universidad Autónoma del Estado de
					México</institution>
				<addr-line>
					<city>Toluca</city>
					<state>Edo. Mex.</state>
					<postal-code>50120</postal-code>
				</addr-line>
				<country country="MX">Mexico</country>
			</aff>
			<aff id="aff2">
				<label>β</label>
				<institution content-type="original">Universidad Politécnica del Valle de Toluca,
					Santiaguito Tlalcilalcali, Edo. Mex., 50904, México.</institution>
				<institution content-type="normalized">Universidad Politécnica del Valle de
					Toluca</institution>
				<institution content-type="orgname">Universidad Politécnica del Valle de
					Toluca</institution>
				<addr-line>
					<city>Santiaguito Tlalcilalcali</city>
					<state>Edo. Mex.</state>
					<postal-code>50904</postal-code>
				</addr-line>
				<country country="MX">Mexico</country>
			</aff>
			<aff id="aff3">
				<label>3</label>
				<institution content-type="original">Unidad Profesional Interdisciplinaria en
					Ingeniería y Tecnologías Avanzadas del I.P.N. Gustavo A. Madero, Cd. Mx., 07340,
					México.</institution>
				<institution content-type="normalized">Instituto Politécnico Nacional</institution>
				<institution content-type="orgdiv1">Unidad Profesional Interdisciplinaria en
					Ingeniería y Tecnologías Avanzadas</institution>
				<institution content-type="orgname">I.P.N.</institution>
				<addr-line>
					<city>Cd. Mx.</city>
					<postal-code>07340</postal-code>
				</addr-line>
				<country country="MX">Mexico</country>
			</aff>
			<aff id="aff4">
				<label>4</label>
				<institution content-type="original">Centro de Desarrollo de Productos Bióticos del
					Instituto Politécnico Nacional, Yautepec, Morelos, 62730, México.</institution>
				<institution content-type="normalized">Instituto Politécnico Nacional</institution>
				<institution content-type="orgdiv1">Centro de Desarrollo de Productos
					Bióticos</institution>
				<institution content-type="orgname">Instituto Politécnico Nacional</institution>
				<addr-line>
					<city>Yautepec</city>
					<state>Morelos</state>
					<postal-code>62730</postal-code>
				</addr-line>
				<country country="MX">Mexico</country>
			</aff>
			<author-notes>
				<corresp id="c1">
					<label>*</label>
					<email>ruben tol@yahoo.com.mx</email>
				</corresp>
			</author-notes>
			<pub-date date-type="pub" publication-format="electronic">
				<day>26</day>
				<month>06</month>
				<year>2020</year>
			</pub-date>
			<pub-date date-type="collection" publication-format="electronic">
				<month>12</month>
				<year>2016</year>
			</pub-date>
			<volume>29</volume>
			<issue>4</issue>
			<fpage>112</fpage>
			<lpage>115</lpage>
			<history>
				<date date-type="received">
					<day>06</day>
					<month>11</month>
					<year>2015</year>
				</date>
				<date date-type="accepted">
					<day>22</day>
					<month>11</month>
					<year>2016</year>
				</date>
			</history>
			<permissions>
				<license license-type="open-access"
					xlink:href="https://creativecommons.org/licenses/by-nc/4.0/" xml:lang="en">
					<license-p>This is an open-access article distributed under the terms of the
						Creative Commons Attribution License</license-p>
				</license>
			</permissions>
			<abstract>
				<title>Abstract</title>
				<p>This paper presents the implementation of Z-scan technique using NI cRIO 9074
					system to characterize different types of nanofluids and films. This technique
					was implemented in the <italic>Universidad Autonoma del Estado de
						Mexico.</italic> For this experiment a chassis NI cRIO9074 of National
					Instruments, a linear translation stage NRT150E and a stepper motor controller
					BSC203 were used, both of Thorlabs. Three steps were followed for this
					implementation first, the connection between NI cRIO9074 and BSC203 controller.
					Second, the program on LabVIEW was developed and finally, all optic part of the
					z-scan technique was implemented. This implementation can be used to
					characterize relatively thin (&lt; 5mm) optical materials. The system testing
					was done with gold nanoparticles. The results showed the nonlinear optical
					properties of these samples.</p>
			</abstract>
			<kwd-group xml:lang="en">
				<title><italic>Keywords:</italic></title>
				<kwd>instrumentation</kwd>
				<kwd>nonlinear refractive index</kwd>
				<kwd>Z-scan</kwd>
				<kwd>nanoparticles</kwd>
			</kwd-group>
			<counts>
				<fig-count count="4"/>
				<table-count count="1"/>
				<equation-count count="3"/>
				<ref-count count="15"/>
				<page-count count="04"/>
			</counts>
		</article-meta>
	</front>
	<body>
		<sec sec-type="intro">
			<title>Introduction</title>
			<p>In recent years, the studies for new nonlinear optical materials have been increasing
				interest, due to the numerous applications, such as characterization of biological
				nano-markers, chemical and biological sensors, energy transport, thermal materials,
				and photothermal therapy, in general in nanoscience and nanotechnology. For this,
				the Z-scan technique has been widely used, due to versatility of applications in
				optical study of nonlinear index of refraction, <italic>n</italic>
				<sub>
					<italic>2</italic>
				</sub> , and the nonlinear absorption coefficient, <italic>β</italic> [<xref
					ref-type="bibr" rid="B1">1</xref>, <xref ref-type="bibr" rid="B2">2</xref>]. On
				the other hand, the cRIO9074 system is a reconfigurable embedded control and data
				acquisition system. This controller offers powerful stand-alone embedded execution
				for deterministic LabVIEW Real-Time applications. Additionally, cRIO9074 is
				programmed with LabVIEW. It is a graphical programming language that uses icons
				instead of lines of text to create applications. In contrast to text-based
				programming languages, where instructions determine program execution, LabVIEW uses
				dataflow programming, where the flow of data determines execution. In LabVIEW, the
				programmer builds a user interface with a set of tools and objects. The front panel
				is user interface, and the block diagram contains code of functions to control the
				front panel objects, using graphical representations. Then LabIEW can be used in a
				variety of embedded control and monitoring applications, like to Z-scan [<xref
					ref-type="bibr" rid="B3">3</xref>, <xref ref-type="bibr" rid="B4">4</xref>]. To
				characterize different types of nanofluids the Z-scan technique was implemented
				using NI cRIO 9074 system. This technique was implemented in the <italic>Facultad de
					Medicina</italic> of the <italic>Universidad Autonoma del Estado de
					Mexico.</italic> In this work, the steps for the implementation of the Z-scan
				technique are described. Finally, the system was tested with Au nanofluids. The
				results showed the nonlinear optical properties of these samples.</p>
		</sec>
		<sec>
			<title>NI cRIO9074 system and BSC203 driver communication</title>
			<p>The BSC203 is a driver of THORLABS for linear translation stages and it has different protocols of communication like to USB,
				RS232, Ethernet and TTL signals (trigger in/out). TTL communication between cRIO9074
				and BSC203 was used. For this communication, the cRIO9074 used NI9401 module was
				also used. This module is an 8-channel bidirectional digital, which received and
				send TTL signals to BSC203. In the <xref ref-type="fig" rid="f1">Figure 1(a)</xref>
				this connection is shown, where the DB25 and DB15 connectors correspond to NI9401
				and BSC203 respectively.</p>
			<p>
				<fig id="f1">
					<label>Figure 1</label>
					<caption>
						<title>(a) NI cRIO9074 system and BSC203 driver communication. For 9401: pin
							1 = GND, pin 14 = digital input and pin 20 = digital output; and for
							BSC203: pin 9 = GND, pin 4 = Trigger input and pin 12 = Trigger output
								[<xref ref-type="bibr" rid="B5">5</xref>, <xref ref-type="bibr"
								rid="B6">6</xref>]; (b) Introduction of parameters; (c) Z-scan
							Technique Control Panel.</title>
					</caption>
					<graphic xlink:href="1665-3521-sv-29-04-112-gf1.jpg"/>
				</fig>
			</p>
		</sec>
		<sec>
			<title>Construction of program on LabVIEW</title>
			<p>The Z-scan program contains &quot;while loop&quot; and &quot;case structure&quot;
				instructions. The program has five parts. The first is the introduction of
				parameters for Z-scan such as scanning length, scan resolution and variation
				tolerance laser (<xref ref-type="fig" rid="f1">Figure 1(b)</xref>). The second part
				is the start trigger, it has three conditions before of data acquisition, one is the
				trigger output of BSC203 and the other is the reference sensor signal
				(D<sub>r</sub>). When the reference voltage is higher than &quot;BAJO&quot; and
				lower than &quot;ALTO&quot;, the data acquisition begins. The module NI9234 provides this signal reference. These conditions are shown in <xref
					ref-type="fig" rid="f2">Figure 2(a)</xref>.</p>
			<p>
				<fig id="f2">
					<label>Figure 2</label>
					<caption>
						<title>(a) Conditions to begin the data acquisition; (b) Data acquisition;
							(c) Data table in block diagram.</title>
					</caption>
					<graphic xlink:href="1665-3521-sv-29-04-112-gf2.gif"/>
				</fig>
			</p>
			<p>The next part is three-sensor data acquisition. The first sensor is the reference
				phototransistor (D<sub>r</sub>); the second is the closed aperture (D<sub>c</sub>)
				and third is open aperture (D<sub>o</sub>). These signals are the RMS values (<xref
					ref-type="fig" rid="f2">Figure 2(b)</xref>).</p>
			<p>The fourth part of program is the advance of linear translation stage. This advance
				depends on the scan resolution. In the case of Au nanofluid, it is 0.5mm. Finally, a
				table received the experimental data (<xref ref-type="fig" rid="f2">Figure
					2(c)</xref>). These data are processed and fits with the <xref
					ref-type="disp-formula" rid="e2">equation 2</xref> in Origin to determine the
				nonlinear refraction index.</p>
			<p>Then in general, the program in LabVIEW after the RUN, it calculates the number of
				measures, then it waits for the BSC203 trigger, takes the data, writes in the table
				and sends a trigger for next measure, and so on until the number of measures is
				completed. The control panel is shown in <xref ref-type="fig" rid="f1">Figure
					1(c)</xref>.</p>
		</sec>
		<sec>
			<title>Experimental set-up</title>
			<p>The implementation of all optic parts of the z-scan technique begins with the
				characterization of diode laser. In this case <italic>ω</italic>
				<sub>
					<italic>0</italic>
				</sub> = 30.1 μm (this laser beam waist at the focus length was calculated with ω =
				450 μιη) and the Rayleigh length was found to be satisfied the basic criteria of the
				Z-scan experiment, <italic>I</italic>
				<sub>
					<italic>0</italic>
				</sub> = 1.75 KW/cm<sup>2</sup> is the on-axis irradiance at focus (z = 0), λ= 532
				nm [<xref ref-type="bibr" rid="B6">6</xref>]. A microcontroller circuit modulated
				the laser to 10 Hz. The lens (L<sub>1</sub>) is 8 cm focal length. Other important
				part is the alignment; ensuring that the laser is perpendicular to the lens, sample
				and detectors. Also, the Linear Translation Stage should to be parallel to Z axis.
				The <xref ref-type="fig" rid="f3">Figure 3</xref> shows the experimental set-up.</p>
			<p>To calculate the nonlinear refractive index (n<sub>2</sub>) were used the next
				equations [<xref ref-type="bibr" rid="B2">2</xref>,<xref ref-type="bibr" rid="B4"
					>4</xref>].</p>
			<p>
				<fig id="f3">
					<label>Figure 3</label>
					<caption>
						<title>Z-scan experimental set-up.</title>
					</caption>
					<graphic xlink:href="1665-3521-sv-29-04-112-gf3.gif"/>
				</fig>
			</p>
			<p>
				<disp-formula id="e1">
					<mml:math>
						<mml:mi mathvariant="normal">Δ</mml:mi>
						<mml:msub>
							<mml:mrow>
								<mml:mi mathvariant="normal">Φ</mml:mi>
							</mml:mrow>
							<mml:mrow>
								<mml:mn>0</mml:mn>
							</mml:mrow>
						</mml:msub>
						<mml:mo>=</mml:mo>
						<mml:mi>k</mml:mi>
						<mml:msub>
							<mml:mrow>
								<mml:mi>n</mml:mi>
							</mml:mrow>
							<mml:mrow>
								<mml:mn>2</mml:mn>
							</mml:mrow>
						</mml:msub>
						<mml:msub>
							<mml:mrow>
								<mml:mi>I</mml:mi>
							</mml:mrow>
							<mml:mrow>
								<mml:mn>0</mml:mn>
							</mml:mrow>
						</mml:msub>
						<mml:msub>
							<mml:mrow>
								<mml:mi>L</mml:mi>
							</mml:mrow>
							<mml:mrow>
								<mml:mi>e</mml:mi>
								<mml:mi>f</mml:mi>
								<mml:mi>f</mml:mi>
							</mml:mrow>
						</mml:msub>
					</mml:math>
					<label>(1)</label>
				</disp-formula>
			</p>
			<p>Where <italic>L</italic>
				<sub>
					<italic>eff</italic>
				</sub> = (1 - exp(-a<sub>0</sub>L))/α<sub>0</sub> is the effective length of
				nonlinear medium, <italic>k</italic> = <italic>2π/λ</italic> is the wave vector,
					α<sub>0</sub> is the linear absorption coefficient of the samples (L denotes the
				sample thick-ness), ΔΦ<sub>
					<italic>o</italic>
				</sub> is induced phase shift, proportional at the transmittance variation between
				peak and valley positions describe for <xref ref-type="disp-formula" rid="e2">Eq.
					2</xref>.</p>
			<p>
				<disp-formula id="e2">
					<mml:math>
						<mml:mi>T</mml:mi>
						<mml:mfenced separators="|">
							<mml:mrow>
								<mml:mi>z</mml:mi>
								<mml:mo>,</mml:mo>
								<mml:mi mathvariant="normal">Δ</mml:mi>
								<mml:mi mathvariant="normal">Φ</mml:mi>
							</mml:mrow>
						</mml:mfenced>
						<mml:mo>=</mml:mo>
						<mml:mn>1</mml:mn>
						<mml:mo>+</mml:mo>
						<mml:mn>4</mml:mn>
						<mml:mi mathvariant="normal">Δ</mml:mi>
						<mml:msub>
							<mml:mrow>
								<mml:mi mathvariant="normal">Φ</mml:mi>
							</mml:mrow>
							<mml:mrow>
								<mml:mn>0</mml:mn>
							</mml:mrow>
						</mml:msub>
						<mml:mo>(</mml:mo>
						<mml:mfrac>
							<mml:mrow>
								<mml:mi>z</mml:mi>
							</mml:mrow>
							<mml:mrow>
								<mml:msub>
									<mml:mrow>
										<mml:mi>z</mml:mi>
									</mml:mrow>
									<mml:mrow>
										<mml:mn>0</mml:mn>
									</mml:mrow>
								</mml:msub>
							</mml:mrow>
						</mml:mfrac>
						<mml:mo>)</mml:mo>
						<mml:mo>/</mml:mo>
						<mml:mo>(</mml:mo>
						<mml:mo>(</mml:mo>
						<mml:mfrac>
							<mml:mrow>
								<mml:mi>z</mml:mi>
							</mml:mrow>
							<mml:mrow>
								<mml:msub>
									<mml:mrow>
										<mml:mi>z</mml:mi>
									</mml:mrow>
									<mml:mrow>
										<mml:mn>0</mml:mn>
									</mml:mrow>
								</mml:msub>
							</mml:mrow>
						</mml:mfrac>
						<mml:msup>
							<mml:mrow>
								<mml:mo>)</mml:mo>
							</mml:mrow>
							<mml:mrow>
								<mml:mn>2</mml:mn>
							</mml:mrow>
						</mml:msup>
						<mml:mo>+</mml:mo>
						<mml:mn>1</mml:mn>
						<mml:mo>)</mml:mo>
						<mml:mo>(</mml:mo>
						<mml:mfenced separators="|">
							<mml:mrow>
								<mml:mfrac>
									<mml:mrow>
										<mml:mi>z</mml:mi>
									</mml:mrow>
									<mml:mrow>
										<mml:msub>
											<mml:mrow>
												<mml:mi>z</mml:mi>
											</mml:mrow>
											<mml:mrow>
												<mml:mn>0</mml:mn>
											</mml:mrow>
										</mml:msub>
									</mml:mrow>
								</mml:mfrac>
							</mml:mrow>
						</mml:mfenced>
						<mml:mo>+</mml:mo>
						<mml:mn>9</mml:mn>
						<mml:mo>)</mml:mo>
					</mml:math>
					<label>(2)</label>
				</disp-formula>
			</p>
			<p>Where <italic>z</italic> is the position, <italic>z</italic>
				<sub>0</sub> is the Rayleigh length, finally the induced phase shift is determinates
				by <xref ref-type="disp-formula" rid="e3">Eq. 3</xref>.</p>
			<p>
				<disp-formula id="e3">
					<mml:math>
						<mml:mi mathvariant="normal">Δ</mml:mi>
						<mml:msub>
							<mml:mrow>
								<mml:mi>T</mml:mi>
							</mml:mrow>
							<mml:mrow>
								<mml:mi>p</mml:mi>
								<mml:mo>-</mml:mo>
								<mml:mi>v</mml:mi>
							</mml:mrow>
						</mml:msub>
						<mml:mo>=</mml:mo>
						<mml:mn>0.406</mml:mn>
						<mml:mfenced close="|" separators="|">
							<mml:mrow>
								<mml:mn>1</mml:mn>
								<mml:mo>-</mml:mo>
								<mml:mi>S</mml:mi>
								<mml:msup>
									<mml:mrow>
										<mml:mo>)</mml:mo>
									</mml:mrow>
									<mml:mrow>
										<mml:mn>0.25</mml:mn>
									</mml:mrow>
								</mml:msup>
							</mml:mrow>
						</mml:mfenced>
						<mml:mi> </mml:mi>
						<mml:mi mathvariant="normal">Δ</mml:mi>
						<mml:msub>
							<mml:mrow>
								<mml:mi mathvariant="normal">Φ</mml:mi>
							</mml:mrow>
							<mml:mrow>
								<mml:mn>0</mml:mn>
							</mml:mrow>
						</mml:msub>
						<mml:mi> </mml:mi>
						<mml:mo>|</mml:mo>
					</mml:math>
					<label>(3)</label>
				</disp-formula>
			</p>
			<p>Here <italic>S</italic> is the linear transmittance of the aperture. The sample was
				scanned along a Z-axis by our system.</p>
			
			
		</sec>
		<sec sec-type="results|discussion">
			<title>Results and Discussion</title>
			<p>The synthesized sample was composed of Au nanoparticles of 30 nm in average diameter
				and the tested sample consists of an Au nanofluid with 0.033 mmol in 3 ml of water
				(initial concentration). After characterization, it had a SPR to 520 nm. The
				nanofluid was placed in a quartz cuvette of 1mm of optical thickness. All the
				experiments were performed at room temperature. In addition, was diluted two ml of
				nanofluid with 0.5 ml of water, until get four samples, the last was 50 % nanofluid
				and 50 % of water to observed the signal of Z-scan respect to concentration. <xref
					ref-type="fig" rid="f4">Figure 4(a - e)</xref> shows the closed aperture Z-scan
				curves obtained for Au nanofluids.</p>
			<p>
				<fig id="f4">
					<label>Figure 4</label>
					<caption>
						<title>Au nanofluid (a) Initial concentration (2 ml); (b) - (e) Successive
							dilutions with 0.5 ml, 1.0 ml, 1.5 ml and 2.0 ml water.</title>
					</caption>
					<graphic xlink:href="1665-3521-sv-29-04-112-gf4.gif"/>
				</fig>
			</p>
			<p>The circle symbols represent the experimental data and the solid lines is the
				theoretical fit. The experimental data show symmetry curves. The peak followed by
				valley illustrates a self-focusing effect for a negative change in refraction. The
				solid lines show the theoretical fitting using a well-known normalized
				transmittance. In <xref ref-type="table" rid="t1">Table 1</xref> these experiments
				are summarizing.</p>
			<p>
				<table-wrap id="t1">
					<label>Table 1</label>
					<caption>
						<title>Data summary for Z-scan experiments</title>
					</caption>
					<table width="985" style="border-collapse: collapse">
						<colgroup>
							<col width="18%"/>
							<col width="18%"/>
							<col width="18%"/>
							<col width="16%"/>
							<col width="26%"/>
						</colgroup>
						<thead>
							<tr>
								<th align="center"
									style="border-top: 1px solid; border-bottom: 1px solid">Au
									nanofluid / water (mL)</th>
								<th align="center"
									style="border-top: 1px solid; border-bottom: 1px solid"
									>ΔT<sub>p-v</sub></th>
								<th align="center"
									style="border-top: 1px solid; border-bottom: 1px solid"
									>ΔΦ<sub>0</sub></th>
								<th align="center"
									style="border-top: 1px solid; border-bottom: 1px solid">α
									(cm<sup>-1</sup>)</th>
								<th align="center"
									style="border-top: 1px solid; border-bottom: 1px solid"
									>n<sub>2</sub>(cm<sup>2</sup>/W) x 10<sup>-7</sup></th>
							</tr>
						</thead>
						<tbody>
							<tr>
								<td align="center"
									style="border-top: none; border-bottom: none; border-left: none border-right: none"
									>2/0</td>
								<td align="center"
									style="border-top: none; border-bottom: none; border-left: none border-right: none"
									>0.55</td>
								<td align="center"
									style="border-top: none; border-bottom: none; border-left: none border-right: none"
									>1.61</td>
								<td align="center"
									style="border-top: none; border-bottom: none; border-left: none border-right: none"
									>0.65</td>
								<td align="center"
									style="border-top: none; border-bottom: none; border-left: none border-right: none"
									>-8.02 ± 0.02</td>
							</tr>
							<tr>
								<td align="center"
									style="border-top: none; border-bottom: none; border-left: none border-right: none"
									>2/0.5</td>
								<td align="center"
									style="border-top: none; border-bottom: none; border-left: none border-right: none"
									>0.528</td>
								<td align="center"
									style="border-top: none; border-bottom: none; border-left: none border-right: none"
									>1.55</td>
								<td align="center"
									style="border-top: none; border-bottom: none; border-left: none border-right: none"
									>0.38</td>
								<td align="center"
									style="border-top: none; border-bottom: none; border-left: none border-right: none"
									>-7.60 ± 0.03</td>
							</tr>
							<tr>
								<td align="center"
									style="border-top: none; border-bottom: none; border-left: none border-right: none"
									>2/1</td>
								<td align="center"
									style="border-top: none; border-bottom: none; border-left: none border-right: none"
									>0.403</td>
								<td align="center"
									style="border-top: none; border-bottom: none; border-left: none border-right: none"
									>1.18</td>
								<td align="center"
									style="border-top: none; border-bottom: none; border-left: none border-right: none"
									>0.30</td>
								<td align="center"
									style="border-top: none; border-bottom: none; border-left: none border-right: none"
									>-5.78 ± 0.03</td>
							</tr>
							<tr>
								<td align="center"
									style="border-top: none; border-bottom: none; border-left: none border-right: none"
									>2/1.5</td>
								<td align="center"
									style="border-top: none; border-bottom: none; border-left: none border-right: none"
									>0.315</td>
								<td align="center"
									style="border-top: none; border-bottom: none; border-left: none border-right: none"
									>0.92</td>
								<td align="center"
									style="border-top: none; border-bottom: none; border-left: none border-right: none"
									>0.17</td>
								<td align="center"
									style="border-top: none; border-bottom: none; border-left: none border-right: none"
									>-4.49 ± 0.04</td>
							</tr>
							<tr>
								<td align="center"
									style="border-top: none; border-bottom: 1px solid">2/2</td>
								<td align="center"
									style="border-top: none; border-bottom: 1px solid">0.274</td>
								<td align="center"
									style="border-top: none; border-bottom: 1px solid">0.80</td>
								<td align="center"
									style="border-top: none; border-bottom: 1px solid">0.22</td>
								<td align="center"
									style="border-top: none; border-bottom: 1px solid">-3.91 ±
									0.03</td>
							</tr>
						</tbody>
					</table>
				</table-wrap>
			</p>
			<p>It is important to specify that there are many works on the synthesis of
				nanoparticles with different experimental conditions such as the size of the
				nanoparticle, the type of concentration, solvent stabilizer and solvent type [<xref
					ref-type="bibr" rid="B7">7</xref>-<xref ref-type="bibr" rid="B15">15</xref>].
				Therefore, these differences cause different effects on colloid nonlinearities.
				Esmacil Shahriari <italic>et al.</italic> [<xref ref-type="bibr" rid="B11"
				>11</xref>] found nonlinear refractive indices using nanoparticles of 30.5 nm
				particle size and concentration of 2.3 × 10<sup>-3</sup> M in water. These results
				are very similar to those obtained in this work. In both papers, reduction reactions
				(redox) where a salt of gold is reduce for nanoparticles synthesis are used. These
				results are very similar to those obtained in this work.</p>
			<p>Finally, Marcano <italic>et al.</italic> [<xref ref-type="bibr" rid="B14">14</xref>],
				in laboratory practice made inexpensive experiments for observing thermal lens and
				Z-scan for a sample of iodine in ethanol, in which there is no automatic control
				system for the experimental data with greater accuracy. Therefore, in this work,
				automation system by controlling the linear actuator and synchronization with the laser pulse with a more versatile and fast application was proposed.</p>
		</sec>
		<sec sec-type="conclusions">
			<title>Conclusion</title>
			<p>The implementation of the Z-scan technique using NI cRIO 9074 system is functional
				and the results show coherence with other author's obtained values of refractive
				index coefficient nonlinear of similar order [<xref ref-type="bibr" rid="B11"
					>11</xref>]. The implementation of this system with NI cRIO 9074 system offers
				flexible implementation and is relatively simple, compared to other techniques in
				optic laboratories [<xref ref-type="bibr" rid="B14">14</xref>]. In addition, it can
				be seen that the measurements are accurate and reliable.</p>
		</sec>
	</body>
	<back>
		<ack>
			<title>Acknowledgements</title>
			<p>The authors are thankful to CONACYT, UAEMex, COFAA and SIP - IPN for financial
				support.</p>
		</ack>
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