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please see this link

html

 <div id="getitnow">btn 1</div>
 <div id="getitnow">btn 2</div>
 <div id="getitnow">btn 3</div>
 <div id="getitnow">btn 4</div>

 <div id="slideout">
   <div id="containclickme">
   </div>
 </div>

css

#slideout {
background: #666;
position: relative;
width: 300px;
height: 80px;
right:-300px;
margin-top:50px;
float:right;
}

#getitnow {
padding:10px;
border:1px solid #ccc;
width:100px;
}

script

$(function () {
// cache the sliding object in a var
var slideout = $('#slideout');
// click-me not clickme
$("#getitnow").toggle(function () {
    // use cached object instead of searching
    slideout.animate({
        right: '0px'
    }, {
        queue: false,
        duration: 500
    });
}, function () {
    // use cached object instead of searching        
    slideout.animate({
        right: '-300px'
    }, {
        queue: false,
        duration: 500
    });
});
});

I am trying to get the slide out div to work no matter which button you click.

How ever it only slides out when you click the first button?

What am i doing wrong?

share|improve this question
    
All the buttons are having the same id's change them , id should be unique check fiddle jsfiddle.net/Vinay199129/zxu7w/95 – Vinay Singh Aug 27 '13 at 10:47

Use class instead of id,same id's cannot be used in the page.

share|improve this answer
    
thank you that did the trick @Sharath, simple but very effective. – Christopher Almond Aug 27 '13 at 10:50

Use classes:

<div class="getitnow"></div>

cause we're not allowed to have multiple ID in the DOM.

and this is all you need:

LIVE DEMO

var $slideout = $('#slideout');
$(".getitnow").click(function () {
    var inView = parseInt($slideout.css('right'), 10) < 0;
    $slideout.stop().animate({ right: (inView ? 0 : -300) }, 500);
});
share|improve this answer

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