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  <journal-id journal-id-type="publisher-id">46</journal-id>
  <journal-id journal-id-type="short-title">gssr</journal-id>
  <journal-id journal-id-type="doi">10.31703/gssr</journal-id>
  <journal-title-group>
    <journal-title>Global Social Sciences Review</journal-title>
    <abbrev-journal-title abbrev-type="publisher">gssr</abbrev-journal-title>
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  <issn publication-format="print">2520-0348</issn>
  <issn publication-format="electronic">2616-793X</issn>
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  <publisher>
    <publisher-name>Humanity Publications</publisher-name>
    <publisher-loc>Pakistan</publisher-loc>
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</journal-meta>
<article-meta>
  <article-id pub-id-type="publisher-id">390757</article-id>
  <article-id pub-id-type="doi">10.31703/gssr.2019(IV-III).28</article-id>
  <article-id pub-id-type="other" specific-use="submission-id">1226</article-id>
  <article-version article-version-type="publisher">1.0</article-version>
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    <subj-group subj-group-type="heading">
      <subject>article</subject>
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  <title-group>
    <article-title xml:lang="en">Teachers&apos; Misconceptions in Science: Implications for Developing a Remedial Teacher Training Program</article-title>
  </title-group>
<contrib-group>
  <contrib contrib-type="author" seq="1" corresp="yes">
    <name>
      <surname>Rasul</surname>
      <given-names>Saria</given-names>
    </name>
    <role vocab="credit" vocab-identifier="https://credit.niso.org/" vocab-term="Conceptualization" vocab-term-identifier="https://credit.niso.org/contributor-roles/conceptualization/">Conceptualization</role>
    <role vocab="credit" vocab-identifier="https://credit.niso.org/" vocab-term="Writing – original draft" vocab-term-identifier="https://credit.niso.org/contributor-roles/writing-original-draft/">Writing – original draft</role>
    <xref ref-type="aff" rid="aff1"/>
    <xref ref-type="corresp" rid="cor1"/>
  </contrib>
  <contrib contrib-type="author" seq="2">
    <name>
      <surname>Shahzad</surname>
      <given-names>Abid</given-names>
    </name>
    <role vocab="credit" vocab-identifier="https://credit.niso.org/" vocab-term="Writing – review &amp; editing" vocab-term-identifier="https://credit.niso.org/contributor-roles/writing-review-editing/">Writing – review &amp; editing</role>
    <xref ref-type="aff" rid="aff2"/>
  </contrib>
  <contrib contrib-type="author" seq="3">
    <name>
      <surname>Iqbal</surname>
      <given-names>Zafar</given-names>
    </name>
    <role vocab="credit" vocab-identifier="https://credit.niso.org/" vocab-term="Writing – review &amp; editing" vocab-term-identifier="https://credit.niso.org/contributor-roles/writing-review-editing/">Writing – review &amp; editing</role>
    <xref ref-type="aff" rid="aff3"/>
  </contrib>
  <aff id="aff1">
    <label>1</label>
    <institution-wrap>
      <institution>Ph.D. Scholar, Department of Education, University of Management Technology Lahore</institution>
    </institution-wrap>
    <addr-line>Punjab</addr-line>
    <country>Pakistan</country>
  </aff>
  <aff id="aff2">
    <label>2</label>
    <institution-wrap>
      <institution>Department of Education, The Islamia University of Bahawalpur</institution>
    </institution-wrap>
    <named-content content-type="author-role">Assistant Professor</named-content>
    <addr-line>Punjab</addr-line>
    <country>Pakistan</country>
  </aff>
  <aff id="aff3">
    <label>3</label>
    <institution-wrap>
      <institution>Adjunct Professor, Director Graduate Studies UMT Lahore</institution>
    </institution-wrap>
    <addr-line>Punjab</addr-line>
    <country>Pakistan</country>
  </aff>
</contrib-group>
<author-notes>
  <corresp id="cor1">Corresponding Author: Saria Rasul, Ph.D. Scholar, Department of Education, University of Management Technology Lahore, Punjab, Pakistan.. Contact: 0</corresp>
<fn fn-type="COI-statement" id="fn-coi">
  <p>The authors declare that they have no conflicts of interest.</p>
</fn>
<fn fn-type="ethics-statement" id="fn-ethics">
  <p>This study did not require formal ethics approval.</p>
</fn>
<fn fn-type="data-availability-statement" id="fn-data">
  <p>Data sharing is not applicable to this article.</p>
</fn>
</author-notes>
<pub-date pub-type="epub" date-type="pub" publication-format="electronic">
  <day>30</day>
  <month>09</month>
  <year>2019</year>
</pub-date>
<pub-date pub-type="collection">
  <month>09</month>
  <year>2019</year>
</pub-date>
<pub-date date-type="pub" publication-format="print">
  <day>16</day>
  <month>02</month>
  <year>2022</year>
</pub-date>
  <volume>4</volume>
  <issue>3</issue>
  <season>Summer</season>
  <fpage>221</fpage>
  <lpage>228</lpage>
  <history>
    <date date-type="accepted">
      <day>16</day>
      <month>02</month>
      <year>2022</year>
    </date>
  </history>
<funding-group>
  <funding-statement>
<p>The authors received no specific funding for this work.</p>
  </funding-statement>
</funding-group>
<permissions>
  <copyright-year>2019</copyright-year>
  <copyright-holder>Humanity Publications</copyright-holder>
  <license license-type="open-access" xml:lang="en" xlink:href="https://creativecommons.org/licenses/by/4.0/">
    <license-p>This is an open access article distributed under the terms of the Creative Commons Attribution 4.0 International License.</license-p>
  </license>
</permissions>
<self-uri content-type="text/html" xlink:href="https://gssrjournal.com/article/Teachers-Misconceptions-in-Science:-Implications-for-Developing-a-Remedial-Teacher-Training-Program"/>
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<supplementary-material id="suppl-pdf" content-type="pdf" xlink:href="https://gssrjournal.com/pdf/gssr/dQFozhYEF2.pdf">
  <label>PDF</label>
  <caption>
    <title>Full Text PDF</title>
  </caption>
</supplementary-material>
  <abstract>
    <p>This study is designed to investigate future teachers’ misconceptions in heat and temperature concepts. The objectives of the study were to find out (i) misconceptions of future teachers in concepts of heat and temperature, (ii) to develop a counteractive teacher-training program for certain misconceptions and (iii) to establish the efficiency of treatment. The study sample was 96 prospective science teachers. Convenient sampling method was used in the study. Data from 96 respondents were collected in phase one of the study. Experimental treatment (lesson) based on the 5Es learning model was prepared in the second phase of the study and implemented in the third phase of research. A two tiers test, consisting of 12 items was used to collect data. Each tier was based on choices. The data were analyzed using ANOVA and t-test. The study explored the misconceptions of prospective teachers’ about heat and temperature concepts and established the importance of experimental treatment.</p>
  </abstract>
<kwd-group kwd-group-type="author-keywords">
  <kwd>Science Education</kwd>
  <kwd>Prospective Science Teacher</kwd>
  <kwd>Misconceptions</kwd>
  <kwd>Constructivism</kwd>
  <kwd>Conceptual Change</kwd>
  <kwd>Heat and Temperature Concepts</kwd>
</kwd-group>
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</front>
<body>
<sec id="sec-1">
  <title>Introduction</title>
<p>Science education is becoming important with every passing day due to its increasing role in the life of individuals. Due to the importance of science education learning of science concepts is critical for the learner. (Bodner 1986; Jonassen 1991; Sanger &amp; Greenbowe 1997). To enhance learning there is a need that learner has no misconceptions in their prior knowledge (Andersson 1986). According to Ausubel (1968), teachers must discover students&apos; prior knowledge about concepts and then teaching should be designed. Teachers should be trained to diagnose and overcome misconceptions of students. However, most teachers are concerned with only teaching and not giving importance to the identification of misconceptions and overcoming them. Role of teacher is very important for overcoming learners’ misconceptions. Literature proves that to improve teaching there is a need to identify misconceptions of teachers ( Lawrenz, 1986; Beck et al., 2000; Kikas, 2004).</p><p>Traditional instructions are usually ineffective to overcome misconceptions of learners. There is a need for paradigm shift in teaching methods from teacher centered teaching to learner-centered teaching (Laws et al., 1999; Reddish et al.1997). Quality teaching in science is crucial for enhancing students’ learning, developing conceptual understanding, and increasing scientific literacy and to increase the economic productivity of the country. The National Commission on Teaching and America’s Future (NCTAF, 1997 states (as cited by Ogunmade, 2005 p22) that excellent teaching requires teachers that are competent in subject matter knowledge, pedagogical content knowledge and know learners previous knowledge; can build supportive and thought-provoking class environment; can create good interaction within students and colleagues. Research (Shulman 1986) noted that pedagogical content knowledge of teacher must include knowledge of students’ misconceptions in concepts. Reducing the misconceptions of teachers is very important for improving the quality of education.</p><p>According to Hodson (2008), teaching which is designed to overcome misconceptions has following steps</p><p>1.	Explore learner’ conceptions.</p><p>2.	Arrange opportunities to diagnose students’ concepts.</p><p>3.	Motivate the students to bring changes in their concepts where needed and alter them if they are wrong.</p><p>4.	Help in restructuring concepts of students.</p><p>Research literature revealed that like many other concepts misconceptions are very common in heat and temperature concepts. (Paik, Cho, &amp; Go 2007; Sozbilir, 2003; Yeo &amp; Zadnik 2001; Carlton, 2000; Niaz 2000; Harrison, Grayson, &amp; Treagust 1999; Kesidou &amp; Duit 1993;Erickson 1979)This study was designed to explore the misconceptions of prospective teachers in these concepts during training so that a better training program can be designed keeping in view of misconceptions of students. Literature (Lawrenz, 1986; Beck et al., 2000; Kikas, 2004;) established the importance of such researches to improve teacher training for overcoming misconceptions of teachers in concepts.</p><p><break/></p><p>Statement of the Problem</p><p>Science teachers are responsible for their students’ concepts during learning of science (Dantonio &amp; Beisenherz, 2001). Learning of science will not be effective without overcoming misconceptions of students. This research study was an investigation to identify prospective science teachers’ misconceptions about heat and temperature concepts.</p>
</sec>
<sec id="sec-2">
  <title>Objectives of the Study</title>
<p>Following were the Objectives of the Current Study.</p><p>1.	To discover the misconstructions of future science teachers regarding heat and temperature.</p><p>2.	To cultivate a helpful teachers’ training program in the selected concept areas.</p><p>3.	To establish the efficiency of the counteractive training program to overcome diagnosed misconceptions in selected concept areas.</p><p><break/></p><p>Procedure of Study</p><p>The current study was set up in three phases; in the first phase, (i) twelve two tiers items were used to explore misconceptions regarding temperature and heat concepts (ii) lessons based on the 5’Es model were developed. In the last phase of the study treatment based on these lessons was given and posttest was taken to check the effectiveness of treatment.</p>
</sec>
<sec id="sec-3">
  <title>Methodology</title>
<p>Design of the study</p><p>A quasi-experimental design (pre-test, post-test) was applied to this study. Pretest-posttest nonequivalent control group research design was used in this study. According to Cresswell (2003), pretest-posttest de-signs are helpful for comparing groups and to check the effectiveness of treatment.</p><p><break/></p><p>Population</p><p>All prospective science teachers of B.Ed. programs in GOVT teacher training institutes of Punjab were taken as population.</p><p><break/></p><p>Sample</p><p>Sample in phase one of the study consisted of 96 prospective science teachers selected from 10 teacher training colleges and 5 regional campuses of Allama Iqbal Open University by convenient sampling method representing B.Ed. (regular), B.Ed. (HONS) and B.Ed. (distance).  Sample for phase three was selected on the basis of lab facilities in institutes. The researcher requested to heads of these selected institutes for permission to conduct the study. Finally, the researcher got permission in two of these institutes. These institutes were nominated randomly as an experimental and control group.</p><p><break/></p><p>Instrument</p><p>An instrument containing 12 two-tier MCQs items, was used for the data collection purpose. The first one is based on multiple-choice questions, while the other tier is also based on possible reasons for all probable reactions of the first tier. The extensive related literature review was done to extract possible questions (Weiss, 2010; Tanahoung, Chitaree, &amp; Soankwan, 2010; Yeo &amp; Zadnik, 2001; Wiser, 1986). This study established numerous misconceptions that are in-line with past studies.</p><p><break/></p><p>Reliability and Validity of Instrument</p><p>The validity of the test was established by experts’ opinion and pilot testing. Reliability of test was statistically calculated by Cronbach alpha and was found 0.65.</p>
</sec>
<sec id="sec-4">
  <title>Literature Review</title>
<p>Importance of Science Education</p><p>Knowledge of science is important for solving problems of life. It is important for social and economic progress of the country. Due to such reasons, scientific literacy is given importance in every country. According to literature (AAAS, 1993; Bell et al, 2003; Bianchini &amp; Solomon, 2003; Bybee, 1997; National Research Council, 1996), science education helps individuals and nations in many aspects of life such as:</p><p>2. Improvement in economic output of the country.</p><p>3. Resolve the problems of human by developing a skill for such purposes.</p><p>4. Improvement in the lives of individuals.</p><p>5. Able the individuals to discuss scientific and technological issues.</p><p><break/></p><p>Role of Teacher and Teaching Method in Overcoming Misconceptions of Concepts</p><p>The teacher has key importance in the system of education. They play an important role in the development of the country by giving knowledge to students. That is why the teacher should be well trained to bring an understanding of concepts. According to Gujjar (2013). According to Polland and Tann (1993), the quality teacher must have sufficient knowledge, for the teaching of the subject, student assessment and classroom management and opportunities for regular professional learning. Quality teachers must have; professional development opportunities; sufficient subject matter knowledge; inquiry-oriented teaching approaches, emphasize on development of skills in learner such as observation, questioning, classifying, predicting, testing, information gathering, sorting (NCMST, 2000).</p><p>Literature (Darling-Hammond, 1999; NCMST, 2000; National Research Council, 1997) suggests that high excellent teaching enables learner in gaining a conceptual understanding of concepts. Conceptual understanding of concepts is not possible unless the teacher is trained in exploring and overcoming misconceptions of concepts. According to Shulman (1989), learner comes to classes with many misconceptions so the teacher must have adequate content knowledge to recognize them. According to (Eaton, Anderson &amp; Smith, 1983), teachers should challenge the misconceptions of students and change them with correct scientific explanation. According to (Yip, 1998), the teacher can be a source of misconceptions in students. Stepans (1996) state (as cited in Saccardi,2008) if teacher ignores the students’ misconceptions before teaching then he increases the risk of losing the interest of students in concepts and brings them towards memorization instead of understanding.</p><p>Along with the role of teacher, we cannot ignore the importance of teaching methods for overcoming misconceptions in concepts. Teaching has different methods in different ages. Socrates introduces the dialectic method and john Dewey introduces project method. According to Javed (2013) in this age of scientific development, new didactical approaches have been introduced and old-style methods with change are also in use to up-date our learners with new knowledge and skill.</p><p>Now there is a shift from the behaviorist teaching method to the constructivist teaching method in which students are active in constructing their knowledge with the help of previous knowledge and teacher facilitate this process of learning (National Research Council, 1996). Conceptual change is essential for learning of concepts.</p><p>Not all previous knowledge is not helpful in further learning as it may cause hindrance in further learning so, conceptual change is also one of the important aspects for inducing the learning of concepts. New concepts are learned not only by assimilating with earlier ones but also by modifying and even changing existing concepts. From the late 1970s, conceptual change teaching has played a role in improving the learning of science and in overcoming misconceptions of learners in concepts. (Treagust &amp; Duit, 2008). Different models and strategies (Zhou, 2010; Gregoire, 2003; Dole &amp; Sinatra, 1998; Hynd &amp; Al-vermann, 1986) mostly based on Posner et al.’s model is used to facilitate conceptual change. This model is based on four conditions to bring conceptual change which are: 1) dissatisfaction with previous concepts, 2) intelligibility of new concepts 3) plausibility of new concepts and 4) fruitfulness of new concepts. The literature describes conceptual change teaching effective rather than traditional teaching approaches for overcoming misconceptions (Çalik, Okur &amp; Taylor, 2011; Guzetti, Snyder, Glass, &amp; Gamas, 1993; Piquette &amp; Heikkinen, 2005). This kind of teaching takes into account the previous knowledge of students.</p><p>Conceptual change teaching has different stages and these include diagnosis or elicitation.  In this stage, the teacher uses techniques to diagnose existing concept. Status Change: the teacher uses strategies to diminish problematic knowledge with competing ideas.</p><p><break/></p><p>Features of Conceptual Change Teaching</p><p>Metacognition: there is a need that student must think about their and others ideas and express an opinion about them and change them if wrong? Classroom climate: a good classroom environment that is facilitating for learning is important for conceptual change teaching. Role of Teacher: the teacher should try to make it possible for the learner to express their ideas without fear and help them in building correct ideas. Role of Learner: the learner must take responsibility for their own learning, and help in learning of others (Hewson 1992).</p><p><break/></p><p>Inquiry Teaching Method</p><p>This is a learner-centered teaching method. According to Johnson, (1989) in this method teacher gives direction to students and then they discuss to find a solution to the given assignment. Students take time to find a solution. Role of teacher is passive and he acts as an observer. Due to such environment learners presents their ideas comfortably. This method broadens learner concepts. This method involves the active participation of the teacher and learners. Lederman proposed the following levels of inquiry (as cited in Shaheen, Mushtaq, Bukhari, 2015)</p><p><break/></p><p>Exploration</p><p>At this stage students explore answers of their questions by creative experiences after teacher instructions.</p><p>Direct inquiry</p><p>Problem and procedure is given and students come on conclusion by analyzing their problem.</p><p><break/></p><p>Guided inquiry</p><p>The only problem is given and students find their own method to find solution of given problem.</p><p><break/></p><p>Open-Ended Inquiry</p><p>This level of inquiry is the highest level and demands responsibility of students from</p><p>problem searching to arriving at conclusion.</p><p><break/></p><p>Inquiry-Based Learning Model (5e Instructional Model)</p><p>The sequence of steps designed to bring an understanding of the lesson by the teacher is known as an instructional model. Bybee in 1980 developed 5’Es instructional model. According to Shaheen, Mushtaq, Bukhari (2015), this model is based on a constructivist approach and take into account the current knowledge of students. This model also activates the students’ curiosity and creativity. Engage, Explore, Explain, Elaborate and Evaluate are five phases of this model. The Engage phase is designed to bring motivation of the learner with activities designed for this purpose. The Explore phase is related to students’ questions and answer to investigate topic under study. The explain phase gives the opportunity to teacher and learner to explain the concept and findings. Elaborate phase brings the application of students’ understanding in a different context. Evaluation is the last phase deals with the assessment of students understanding.</p>
</sec>
<sec id="sec-5">
  <title>Data Analysis</title>
<p>One
way ANOVA is used on data of the first phase to find the difference between
different groups of the sample. T-test was applied on experimental and control
group posttest data to find the difference between their achievements</p><p><bold> Statistical Analysis of Phase 1 data to Compare
Different Groups</bold></p><p>Hypothesis
1: There is no significant difference in conceptual understanding of heat and
temperature concepts between different groups of prospective science teachers
(B.Ed. (regular), B.Ed. (HONS) and B.Ed. (distance)</p><p><bold>Table1.</bold> ANOVA Table Showing No
Significant Difference between Different Groups</p><table-wrap id="table1"><label>Table 1</label><caption><title>Table 1</title></caption><table><tbody><tr><td valign="top">  </td><td> <p><bold>Sum of Squares</bold></p> </td><td> <p><bold>Df</bold></p> </td><td> <p><bold>Mean Square</bold></p> </td><td> <p><bold>F</bold></p> </td><td> <p><bold>Sig.</bold></p> </td></tr><tr><td> <p>Between Groups</p> </td><td> <p>1.337</p> </td><td> <p>2</p> </td><td> <p>.668</p> </td><td> <p>.364</p> </td><td> <p>.696</p> </td></tr><tr><td> <p>Within Groups</p> </td><td> <p>170.903</p> </td><td> <p>93</p> </td><td> <p>1.838</p> </td><td>  </td><td>  </td></tr><tr><td> <p>Total</p> </td><td> <p>172.240</p> </td><td> <p>95</p> </td><td>  </td><td>  </td><td>  </td></tr></tbody></table></table-wrap><p>It is obvious from the table
that p-value is greater than.005. So, it is concluded that the null hypothesis
is accepted that there is no significant difference exist between means of
different groups.</p><p><bold>Statistical Analysis of Phase 3 data to
compare the experimental group and the control group.</bold></p><p>Hypothesis
2: There is no significant difference between a conceptual understanding of the
experimental group and control group in concepts of heat and temperature.</p><p><bold>Table
2.</bold> Showing
the Difference Between Experimental Group And Control Group</p><table-wrap id="table2"><label>Table 2</label><caption><title>Table 2</title></caption><table><tbody><tr><td valign="top"> <p><bold>Variable</bold></p> </td><td valign="top"> <p><bold>Group</bold></p> </td><td> <p><bold>N</bold></p> </td><td> <p><bold>M</bold></p> </td><td> <p><bold>SD</bold></p> </td><td> <p><bold>T</bold></p> </td><td> <p><bold>P</bold></p> </td></tr><tr><td> <p>Marks
  of Physics</p> </td><td> <p>Control</p> </td><td> <p>20</p> </td><td> <p>4.2000</p> </td><td> <p>.95145</p> </td><td rowspan="2">  <p>-2.799</p> </td><td rowspan="2">  <p>.006</p> </td></tr><tr><td>  </td><td> <p>Experimental</p> </td><td> <p>20</p> </td><td> <p>5.9000</p> </td><td> <p>2.17401</p> </td></tr></tbody></table></table-wrap><p>It is obvious from the table
that t-test was applied to results of Phase 3 to find the difference between the
experimental group and control group. A result of t-test rejects this null
hypothesis and it is concluded that there is significant difference exist
between control group and experimental group.</p><p><bold>Table
3.</bold>
Frequency and percentage of misconceptions in experimental and control group
after treatment</p><table-wrap id="table3"><label>Table 3</label><caption><title>Table 3</title></caption><table><tbody><tr><td colspan="2" rowspan="2" valign="top"> <p><bold>Misconceptions identified by concept
  test on heat</bold></p> </td><td colspan="2"> <p><bold>Experimental Group</bold></p> </td><td colspan="2"> <p><bold>Control Group</bold></p> </td></tr><tr><td> <p><bold>Frequency</bold></p> </td><td> <p><bold>Percentage</bold></p> </td><td> <p><bold>Frequency</bold></p> </td><td> <p><bold>Percentage</bold></p> </td></tr><tr><td rowspan="2"> <p>Q
  1</p> </td><td> <p>1.Hot  objects contain more heat always</p> </td><td> <p>0</p> </td><td> <p>0</p> </td><td> <p>3</p> </td><td> <p>20</p> </td></tr><tr><td> <p>2.
  Cool objects always contain less heat</p> </td><td> <p>1</p> </td><td> <p>6.67</p> </td><td> <p>8</p> </td><td> <p>53.33</p> </td></tr><tr><td> <p>Q2</p> </td><td> <p>1.water
  cannot be at 0c</p> </td><td> <p>0</p> </td><td> <p>0</p> </td><td> <p>3</p> </td><td> <p>20</p> </td></tr><tr><td rowspan="2"> <p>Q3</p> </td><td> <p>1.Some
  material cannot get cool</p> </td><td> <p>0</p> </td><td> <p>0</p> </td><td> <p>7</p> </td><td> <p>46.67</p> </td></tr><tr><td> <p>2.
  All material cannot come at same temperature in same environment.</p> </td><td> <p>0</p> </td><td> <p>0</p> </td><td> <p>5</p> </td><td> <p>33.33</p> </td></tr><tr><td> <p>Q4</p> </td><td> <p>1.The
  temperature of water will continue to 
  increase even after boiling point</p> </td><td> <p>0</p> </td><td> <p>0</p> </td><td> <p>7</p> </td><td> <p>46.67</p> </td></tr><tr><td rowspan="2"> <p>Q5</p> </td><td> <p>1.Woolen
  materials can generate heat</p> </td><td> <p>0</p> </td><td> <p>0</p> </td><td> <p>6</p> </td><td> <p>40</p> </td></tr><tr><td> <p>2.
  Woolen materials do not allow to enter cool from them</p> </td><td> <p>0</p> </td><td> <p>0</p> </td><td> <p>7</p> </td><td> <p>46.67</p> </td></tr><tr><td rowspan="2"> <p>Q6</p> </td><td> <p>1.When
  things get cool cooling enter in them</p> </td><td> <p>0</p> </td><td> <p>0</p> </td><td> <p>5</p> </td><td> <p>33.33</p> </td></tr><tr><td> <p>2.
  Things get cool because due to the transfer of heat and cool.</p> </td><td> <p>0</p> </td><td> <p>0</p> </td><td> <p>3</p> </td><td> <p>20</p> </td></tr><tr><td rowspan="2"> <p>Q7</p> </td><td> <p>1.
  When things get cool it is cool that is going in them</p> </td><td> <p>0</p> </td><td> <p>0</p> </td><td> <p>6</p> </td><td> <p>40</p> </td></tr><tr><td> <p>2.
  Things get cool because cool is going in and heat is coming out</p> </td><td> <p>0</p> </td><td> <p>0</p> </td><td> <p>3</p> </td><td> <p>20</p> </td></tr><tr><td> <p>Q8</p> </td><td> <p>1.
  Heat is  related with temperature of
  material rather than mass of material</p> </td><td> <p>1</p> </td><td> <p>6.67</p> </td><td> <p>5</p> </td><td> <p>33.33</p> </td></tr><tr><td rowspan="2"> <p>Q9</p> </td><td> <p>1.
  Some materials are naturally hot like wood and never absorb cool.</p> </td><td> <p>0</p> </td><td> <p>0</p> </td><td> <p>3</p> </td><td> <p>20</p> </td></tr><tr><td> <p>2.
  Metal can absorb more heat and cool than other materials</p> </td><td> <p>0</p> </td><td> <p>0</p> </td><td> <p>8</p> </td><td> <p>53.33</p> </td></tr><tr><td rowspan="2"> <p>Q10</p> </td><td> <p>1.Conduction
  is both for heat and temperature</p> </td><td> <p>0</p> </td><td> <p>0</p> </td><td> <p>5</p> </td><td> <p>33.33</p> </td></tr><tr><td> <p>2.
  During conduction flow of temperature 
  take place</p> </td><td> <p>0</p> </td><td> <p>0</p> </td><td> <p>3</p> </td><td> <p>20</p> </td></tr><tr><td rowspan="2"> <p>Q11</p> </td><td> <p>1.Temperature
  can be transferred from high temperature to low temperature</p> </td><td> <p>0</p> </td><td> <p>0</p> </td><td> <p>4</p> </td><td> <p>26.67</p> </td></tr><tr><td> <p>2.
  Things cool  by  transfer of both  heat and temperature</p> </td><td> <p>0</p> </td><td> <p>0</p> </td><td> <p>5</p> </td><td> <p>33.33</p> </td></tr><tr><td rowspan="2"> <p>Q12</p> </td><td> <p>1.
  Different things can get an equal increase in temperature if they are equal
  in amount</p> </td><td> <p>1</p> </td><td> <p>6.67</p> </td><td> <p>3</p> </td><td> <p>20</p> </td></tr><tr><td> <p>2.
  Different things can get an equal increase in temperature if they are heated for
  equal time</p> </td><td> <p>0</p> </td><td> <p>0</p> </td><td> <p>7</p> </td><td> <p>46.67</p> </td></tr></tbody></table></table-wrap>
</sec>
<sec id="sec-6">
  <title>Discussion</title>
<p>A classroom-based on constructivist teaching gives importance to the construction of knowledge rather than memorization of concepts. Such a learning environment is based on the active participation of the learner. In such a learning environment role of the teacher is to assist their students. In constructivist teaching previous knowledge of students also come in contact with their current learning so it becomes possible to overcome their misconceptions. According to (Feden &amp; Vogel, 2003), due to lack of change in teaching methods of teachers students proceed in school without changing their misconceptions. Researches indicate (Wandersee et al., 1994; Chang, 1999; Tan, 2005) that teachers like students also have misconceptions and can be a source of transferring them to their students. Consequently, it is important for pre-service teachers and in-service teachers to be trained in exploring and overcoming misconceptions of students. It is not possible unless we overcome their misconceptions in training years and give them training in constructivist teaching. In this study prospective teachers were tested through a two-tier test. The results indicate the presence of many misconceptions in prospective teachers. To overcome the misconceptions of students they were taught by 5Es learning cycle and post-tested and compared with a group of students taught by traditional teaching methods. The result of the study supports this method in overcoming misconceptions of students as compared to traditional teaching.</p>
</sec>
<sec id="sec-7">
  <title>Recommendations</title>
<p>Implications for Teachers</p><p>1. Role of teachers is very important in better learning so they must be able to diagnose and overcome misconceptions. They must be trained for discussion, lab activities, and assessment to identify misconceptions. They must be trained to teach for overcoming misconceptions.</p><p>2. Teacher education must be designed to train teachers in student-centered and constructivist teaching for overcoming misconceptions.</p><p>3. The curriculum of every level must be designed by keeping in view the misconceptions of students’ of that level.</p><p>4. Textbook writers should address the misconceptions of students while writing books.</p>
</sec>
<sec id="sec-8">
  <title>Conclusion</title>
<p>Teachers should be considered as a source of misconceptions in their students and special focus should be given during the training of teachers in diagnosing and overcoming their misconceptions.</p><p>Traditional instructional methods are ineffective in overcoming students’ misconceptions. To overcome misconceptions there is a need for a constructivist teaching approach.</p>
</sec>
</body>
<back>
<fn-group content-type="conflict-of-interest">
  <title>Conflict of Interest</title>
  <fn fn-type="conflict">
<p>The authors declare that they have no conflicts of interest.</p>
  </fn>
</fn-group>
<fn-group content-type="ethics-statement">
  <title>Ethics Statement</title>
  <fn fn-type="ethics">
<p>This study did not require formal ethics approval.</p>
  </fn>
</fn-group>
<fn-group content-type="data-availability">
  <title>Data Availability</title>
  <fn fn-type="data-availability-statement">
<p>Data sharing is not applicable to this article.</p>
  </fn>
</fn-group>
<app-group>
  <app id="app-suppl">
    <title>Supplementary Materials</title>
<supplementary-material id="suppl-pdf" content-type="pdf" xlink:href="https://gssrjournal.com/pdf/gssr/dQFozhYEF2.pdf">
  <label>PDF</label>
  <caption>
    <title>Full Text PDF</title>
  </caption>
</supplementary-material>
  </app>
</app-group>
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